Image forming apparatus and image forming method

By controlling the speed difference between image carriers and transfer bodies within a specified range and using toner with defined properties, the apparatus achieves improved image quality and stability in tandem-type image forming devices.

JP7721976B2Active Publication Date: 2025-08-13RICOH CO LTD
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Patent Information

Application Number
JP2021101370
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-18
Publication Date
2025-08-13
Estimated Expiration
2041-06-18

AI Technical Summary

Technical Problem

Conventional tandem-type image forming apparatuses suffer from issues such as voids, color misregistration, and transfer belt contamination due to speed differences between the transfer conveyor belt and image carriers, leading to unstable and long-term image quality problems.

Method used

Implementing a speed difference between the image carrier and transfer body of 0.1% to 0.8%, using toner with specific circularity and shape factor, and incorporating a toner matrix with organic fine particles to enhance transfer stability and reduce frictional issues.

Benefits of technology

The solution effectively suppresses image quality defects like hollow areas and filming, ensuring stable operation over a prolonged period.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an image forming apparatus that can reduce the image quality problem, such as void or filming, and can be stably used over a long period.SOLUTION: An image forming apparatus comprises: image carriers; developing means that develops latent images formed on the image carriers into toner images; and a transfer body that has contact parts in contact with the image carriers and has the toner images primarily transferred thereto from the image carriers. The speed difference between the image carrier and the transfer body at the contact part represented by the following formula is 0.1% or more and 0.8% or less. Toner forming the toner image has an average circularity of 0.971 or more and 0.986 or less and a shape factor SF-2 of 110 or more and 119 or less. [Speed difference] when the linear velocity of the image carrier is V1 and the linear velocity of the transfer body is V2, the speed difference is represented by the following formula. Speed difference [%]={(V1-V2) / V2}×100.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an image forming apparatus and an image forming method. [Background technology]

[0002] Conventionally, a tandem-type image forming apparatus has been known in which a plurality of image carriers such as photosensitive drums are arranged in parallel along a transfer conveyor belt, which is an endless moving body, to form a color image. In this tandem-type image forming apparatus, a transfer material, which is a transfer medium, is carried on the transfer conveyor belt by electrostatically adsorbing it to the transfer conveyor belt, and different color images on each image carrier are superimposed on the transfer material to form a color image.

[0003] In these tandem image forming devices, there have been cases where a transfer defect known as "void" occurs, in which the center of a line, character, solid image, etc. is not transferred. To reduce this "void," a speed difference (also called a linear speed ratio) has traditionally been established between the transfer conveyor belt (transfer body) and each image carrier.

[0004] However, there has been a problem of color misregistration occurring due to the speed difference between the transfer conveyor belt and the image carrier. If there is a part of the image carrier with a high coefficient of friction or a part of the transfer material with a high coefficient of friction, when that part reaches the transfer position, the frictional force between the photosensitive element and the transfer material becomes stronger than the frictional force or attraction force between the transfer conveyor belt and the transfer material. As a result, while the part with a high coefficient of friction is in the transfer position, the transfer material is transported by the image carrier while slipping on the transfer conveyor belt. This causes the transfer material to be transported at the linear speed of the image carrier.

[0005] Furthermore, due to the frictional force between the transfer belt and the image carrier at each transfer position, the transfer belt may bend between the transfer positions, making it impossible for the transfer material to be stably transported by the transfer belt.

[0006] To address these problems, the following techniques have been proposed: Patent Document 1 describes a technique in which a speed difference is established between each image carrier and the transfer / transport belt, and the speed of the image carrier downstream in the direction of movement of the transfer / transport belt is faster than the speed of the image carrier upstream, which is said to result in a good image without toner voids or color misalignment.

[0007] In Patent Document 2, the linear speed of the image carrier located downstream of the most upstream image carrier in the direction of movement of the endless moving body is made different from the linear speed of the transfer medium, which is said to prevent the occurrence of the "hollowed-out" phenomenon even if the linear speed of the most upstream image carrier in the direction of movement of the endless moving body is approximately the same as the linear speed of the endless moving body. Summary of the Invention [Problem to be solved by the invention]

[0008] However, conventional techniques have not been able to sufficiently suppress image quality problems such as hollow areas and transfer belt contamination (filming), and there have also been problems with stable long-term use.

[0009] SUMMARY OF THE INVENTION It is therefore an object of the present invention to provide an image forming apparatus that can suppress image quality problems such as hollow defects and filming and can be used stably for a long period of time. [Means for solving the problem]

[0010] In order to solve the above problems, the image forming apparatus of the present invention comprises an image carrier, a developing unit that develops a latent image formed on the image carrier into a toner image, and a transfer body that has a contact portion that comes into contact with the image carrier and to which the toner image is primarily transferred from the image carrier, wherein a speed difference between the image carrier and the transfer body at the contact portion, expressed as follows, is 0.1% or more and 0.8% or less, the toner that forms the toner image contains a polyester resin, has an average circularity of 0.971 or more and 0.986 or less, and a shape factor SF-2 of 110 or more and 119 or less, the toner comprises a toner matrix and a plurality of organic fine particles embedded in the surface of the toner matrix, and the organic fine particles are Copolymer of styrene, methacrylic acid, and sodium salt of sulfate of ethylene oxide adduct of methacrylic acid, or copolymer of styrene, butyl acrylate, methacrylic acid, and ammonium polyoxyethylene-1-(allyloxymethyl) alkyl ether sulfateThe organic fine particles have a volume average particle size of 30 nm or more and 140 nm or less, and the standard deviation of the interparticle distances between adjacent organic fine particles that are not in contact with each other, that is, the standard deviation of the straight-line distance connecting the center of one organic fine particle with the center of another organic fine particle, is 300 nm or less. [Speed difference] The speed difference at the contact point is calculated from the set value of the linear speed of the image carrier and the set value of the linear speed of the transfer body, and when the linear speed of the image carrier is V1 and the linear speed of the transfer body is V2, the speed difference is expressed as follows: Speed difference [%]={(V1-V2) / V2}×100 [Effects of the Invention]

[0011] According to the present invention, it is possible to provide an image forming apparatus that can suppress image quality problems such as hollow holes and filming and can be used stably for a long period of time. [Brief explanation of the drawings]

[0012] [Figure 1] 1 is a schematic diagram illustrating an example of an image forming apparatus according to the present invention. [Figure 2] FIG. 2 is a schematic diagram of the main part of FIG. 1. [Figure 3] FIG. 10 is a diagram illustrating a hollow portion. DETAILED DESCRIPTION OF THE INVENTION

[0013] The image forming apparatus and image forming method according to the present invention will be described below with reference to the drawings. Note that the present invention is not limited to the following embodiments, and other modifications, additions, corrections, deletions, and other changes can be made within the scope of what a person skilled in the art can conceive. Any embodiment that achieves the functions and effects of the present invention is included in the scope of the present invention.

[0014] The image forming apparatus of the present invention comprises an image carrier, a developing means for developing a latent image formed on the image carrier into a toner image, and a transfer body having a contact portion that contacts the image carrier and to which the toner image is primarily transferred from the image carrier, wherein the speed difference between the image carrier and the transfer body at the contact portion, expressed as follows, is 0.1% or more and 0.8% or less, and the toner that forms the toner image has an average circularity of 0.971 or more and 0.986 or less and a shape factor SF-2 of 110 or more and 119 or less. [Speed difference] When the linear velocity of the image carrier is V1 and the linear velocity of the transfer body is V2, the speed difference is expressed as follows: Speed difference [%]={(V1-V2) / V2}×100

[0015] The image forming method of the present invention includes a developing step of developing a latent image formed on an image carrier into a toner image, and a transfer step of primarily transferring the toner image from the image carrier to a transfer body having a contact portion that contacts the image carrier, wherein the speed difference between the image carrier and the transfer body at the contact portion, as expressed below, is 0.1% or more and 0.8% or less, and the toner that forms the toner image has an average circularity of 0.971 or more and 0.986 or less and a shape factor SF-2 of 110 or more and 119 or less. [Speed difference] When the linear velocity of the image carrier is V1 and the linear velocity of the transfer body is V2, the speed difference is expressed as follows: Speed difference [%]={(V1-V2) / V2}×100

[0016] Hereinafter, an embodiment in which the present invention is applied to a direct transfer tandem laser printer (hereinafter referred to as "laser printer") as an electrophotographic image forming apparatus will be described.

[0017] 1 is a schematic diagram of the laser printer according to this embodiment. This laser printer is equipped with toner image forming units 1Y, 1M, 1C, and 1K as four sets of image forming means for forming images in the colors yellow (Y), magenta (M), cyan (C), and black (K). Hereinafter, the subscripts Y, M, C, and K of each reference symbol indicate the components for yellow, magenta, cyan, and black, respectively.

[0018] The four sets of toner image forming units 1Y, 1M, 1C, and 1K are arranged in order from the upstream side in the direction of movement of transfer paper 100 as a transfer medium (the direction in which transfer conveyor belt 60 runs along arrow A in the figure). Each of these toner image forming units 1Y, 1M, 1C, and 1K includes a photosensitive drum 11Y, 11M, 11C, and 11K as an image carrier, and a developing unit as an example of developing means. The toner image forming units 1Y, 1M, 1C, and 1K are arranged so that the rotation axes of the photosensitive drums are parallel to each other and at a predetermined pitch in the direction of transfer paper movement.

[0019] In addition to the toner image forming units 1Y, 1M, 1C, and 1K, this laser printer also includes an optical writing unit 2, paper feed cassettes 3 and 4, a pair of registration rollers 5, a transfer transport unit 6 as a transfer transport device, a belt-fixing fixing unit 7, and a paper discharge tray 8. The transfer transport unit 6 has an endless transfer transport belt 60 as a transfer transport member that carries transfer paper 100 and transports it so that it passes through the transfer positions of each toner image forming unit. This laser printer also includes a manual feed tray MF and a toner supply container TC, and also includes a waste toner bottle, a duplex / reversing unit, a power supply unit, and other items not shown in the figure, all within a space S indicated by a two-dot chain line.

[0020] The optical writing unit 2 includes a light source, a polygon mirror, an f-θ lens, a reflecting mirror, etc., and irradiates the surfaces of the photosensitive drums 11Y, 11M, 11C, and 11K with laser light while scanning them based on image data.

[0021] 2 is an enlarged view showing the schematic configuration of the transfer transport unit 6. The transfer transport belt 60 used in this transfer transport unit 6 is an example of a transfer body. The transfer transport belt 60, which is an endless moving body, has a volume resistivity of, for example, 10 9 ~10 11 The transfer / conveyor belt 60 is an endless single-layer belt with a high resistance of Ωcm, and is made of, for example, PVDF (polyvinylidene fluoride). The transfer / conveyor belt 60 is wound around support rollers 61 to 68 so as to pass through each transfer position that contacts and faces the photosensitive drums 11Y, 11M, 11C, and 11K of each toner image forming unit.

[0022] Of these support rollers, entrance roller 61, which is on the upstream side in the direction of transfer paper movement, is opposed to electrostatic attraction roller 80 for transporting the transfer material, which has a predetermined voltage applied from power source 80a, and is arranged on the outer circumferential surface of transfer transport belt 60. Transfer paper 100 that passes between these two rollers 61, 80 is held by electrostatic attraction on transfer transport belt 60. Roller 63 is a drive roller that frictionally drives transfer transport belt 60, and is connected to a drive source (not shown) to rotate in the direction of the arrow.

[0023] As transfer electric field forming means for forming a transfer electric field at each transfer position, transfer bias applying members 67Y, 67M, 67C, and 67K are provided at positions facing the photosensitive drums so as to contact the back surface of the transfer / conveyor belt 60. These are bias rollers with a sponge or the like attached to their outer peripheries, and a transfer bias is applied to the roller mandrel from each transfer bias power supply 9Y, 9M, 9C, and 9K. The applied transfer bias imparts a transfer charge to the transfer / conveyor belt 60, forming a transfer electric field of a predetermined strength between the transfer / conveyor belt 60 and the surface of the photosensitive drum at each transfer position. A backup roller 68 is also provided to maintain appropriate contact between the transfer paper and the photosensitive drum in the transfer region and to obtain the best transfer nip.

[0024] The transfer bias application members 67Y, 67M, and 67C and the backup roller 68 disposed in the vicinity thereof are rotatably held integrally by a swing bracket 93 and are capable of rotating about a rotation shaft 94. This rotation occurs in the clockwise direction as a cam 96 fixed to a cam shaft 97 rotates in the direction of the arrow.

[0025] The entrance roller 61 and electrostatic attraction roller 80 are integrally supported by an entrance roller bracket 90 and can rotate clockwise from the state shown in FIG. 2 around a shaft 91. A pin 92 fixed to the entrance roller bracket 90 engages with a hole 95 in the swing bracket 93, causing the entrance roller bracket 90 to rotate in conjunction with the swing bracket 93. Clockwise rotation of these brackets 90 and 93 separates the bias application members 67Y, 67M, and 67C and the backup roller 68 located nearby from the photoconductors 11Y, 11M, and 11C, and also moves the entrance roller 61 and electrostatic attraction roller 80 downward. In monochrome mode, which forms black-only images, contact between the photoconductor drums 11Y, 11M, and 11C and the transfer / transport belt 60 can be avoided.

[0026] As described above, the contacting and separating means for contacting and separating the upstream portion of the transfer / transport belt 60 in the transfer paper transport direction with the photosensitive drums 11Y, 11M, and 11C is made up of the swing bracket 93, cam 96, entrance roller bracket 90, etc.

[0027] On the other hand, the transfer bias application member 67K and the adjacent backup roller 68 are rotatably supported by an outlet bracket 98, and are rotatable about an axis 99 that is coaxial with the sensor-opposing rotation member 62, which serves as the outlet roller and will be described later. When the transfer transport unit 6 is attached to or detached from the main body, the transfer bias application member 67K and the adjacent backup roller 68 are rotated clockwise by operating a handle (not shown), thereby separating the transfer bias application member 67K and the adjacent backup roller 68 from the photosensitive member 11K for forming a black image.

[0028] A cleaning device (not shown) made up of a brush roller and a cleaning blade is arranged to come into contact with the outer circumferential surface of the transfer / transport belt 60 wound around the drive roller 63. This cleaning device removes foreign matter such as toner adhering to the transfer / transport belt 60. In addition, a roller 64 is provided downstream of the drive roller 63 in the running direction of the transfer / transport belt 60 in a direction that presses against the outer circumferential surface of the transfer / transport belt, ensuring a proper winding angle around the drive roller 63. A tension roller 65 that applies tension to the belt is provided within the loop of the transfer / transport belt 60 further downstream of the roller 64.

[0029] 1 indicates the transport path of the transfer paper 100. The transfer paper 100 fed from the paper feed cassettes 3, 4 or manual feed tray MF is guided by a transport guide (not shown) and transported by transport rollers to a temporary stop position where a pair of registration rollers 5 is provided. The transfer paper 100 is sent out at a predetermined timing by the pair of registration rollers 5, carried by the transfer transport belt 60, and transported toward each of the toner image forming units 1Y, 1M, 1C, and 1K, passing through transfer nips formed at each transfer position.

[0030] In the color mode for forming a full-color image, the toner images developed on the photosensitive drums 11Y, 11M, 11C, and 11K of the toner image forming units 1Y, 1M, 1C, and 1K are superimposed on the transfer paper 100 at the respective transfer nips. Then, under the action of the transfer electric field and nip pressure, the images are transferred onto the transfer paper 100. As a result of this superimposed transfer, a full-color toner image is formed on the transfer paper 100.

[0031] After the toner image is transferred, the surfaces of the photosensitive drums 11Y, 11M, 11C, and 11K are cleaned by a cleaning device and further neutralized in preparation for the formation of the next electrostatic latent image. Meanwhile, after the full-color toner image formed on the transfer paper 100 has been fixed by the fixing unit 7, the transfer paper 100 moves in either the first paper discharge direction B or the second paper discharge direction C according to the rotational position of the switching guide G. When the transfer paper 100 is discharged onto the paper discharge tray 8 from the first paper discharge direction B, it is stacked with the image side facing down, that is, with the transfer paper 100 facing down. On the other hand, when the transfer paper 100 is discharged in the second paper discharge direction C, it is conveyed to another post-processing device (such as a sorter or binding device) not shown, or is conveyed again to the pair of registration rollers 5 via a switchback section for double-sided printing.

[0032] Next, the features of this embodiment will be described. In this embodiment, the transfer body (e.g., transfer / transport belt 60) has a contact portion that contacts an image carrier (e.g., a photosensitive body), and the toner image is primarily transferred from the image carrier. The speed difference between the image carrier and the transfer body at the contact portion, as shown below, must be 0.1% to 0.8%. The speed difference can also be interpreted as a value that indicates how many percentage points the linear speed of the photosensitive body is greater than that of the transfer / transport belt 60.

[0033] [Speed difference] When the linear velocity of the image carrier is V1 and the linear velocity of the transfer member is V2, the velocity difference is expressed as follows: Speed difference [%]={(V1-V2) / V2}×100

[0034] The speed difference at the contact point is determined from the set value of the linear speed of the photosensitive member and the set value of the linear speed of the transfer member.

[0035] If the speed difference is less than 0.1%, voids will occur significantly. The reason why voids are suppressed when the speed difference satisfies the above range is thought to be that the shear force acting between the photosensitive member and the toner increases, making it difficult for the toner in contact with the photosensitive member and the transfer member at the transfer position to adhere to the photosensitive member.

[0036] If the speed difference is greater than 0.8%, color misregistration occurs. When a speed difference is introduced, the transfer material is transported while slipping against the photosensitive drum at the transfer position. If there is a portion of the photosensitive drum with a high coefficient of friction or a portion of the transfer body with a high coefficient of friction, when that portion reaches the transfer position, the frictional force between the photosensitive drum and the transfer material will be stronger than the electrostatic attraction force between the transfer transport belt and the transfer material. As a result, while that portion is in the transfer position, the transfer material will slip on the transfer transport belt 60 and be transported by the photosensitive drum. As a result of being transported by the photosensitive drum in this way, the timing of the transfer material passing through the next transfer position will be off, resulting in color misregistration. The transfer material may also be called a transfer medium, a recording medium, a medium, or the like.

[0037] The speed difference is preferably 0.2% or more and 0.5% or less, which can further suppress hollow areas and improve the cleaning properties of the photoreceptor and the intermediate transfer filming resistance.

[0038] When there are multiple photosensitive bodies, it is preferable that the photosensitive body on the most downstream side in the transport direction of the transfer body satisfy the above-mentioned speed difference requirement, and it is more preferable that all downstream photosensitive bodies except for the photosensitive body on the most upstream side in the transport direction of the transfer body satisfy the above-mentioned speed difference requirement. In the above example, the linear speed V1y of the Y photoconductor 11Y, which is the photoconductor on the most upstream side in the transfer paper transport direction, is set to be approximately the same as the linear speed V2 of the transfer / transport belt 60, and the linear speeds V1m, V1c, and V1k of the M, C, and K photoconductors further downstream are set to be faster than the linear speed V2 of the transfer / transport belt 60. In other words, in this example, all downstream photoconductors except for the most upstream photoconductor satisfy the above-mentioned speed difference requirement. This makes it possible to further suppress the hollow printout phenomenon. However, this embodiment is not limited to this, and for example, the Y-color photoconductor 11Y, which is the photoconductor on the most upstream side, may also satisfy the above-mentioned speed difference requirement.

[0039] When the speed of the image carrier downstream in the direction of movement of the transfer conveyor belt is made faster than the speed of the image carrier upstream, bending of the transfer conveyor belt between the image carriers can be suppressed. When the linear speed of the image carrier is made slower than the linear speed of the transfer conveyor belt, the force with which the image carrier pulls the transfer conveyor belt upstream in the direction of movement of the transfer conveyor belt becomes weaker as the image carrier moves downstream. As a result, the force with which the upstream image carrier pulls the transfer belt between the image carriers is stronger than the force with which the downstream image carrier pulls the transfer belt upstream in the direction of movement of the transfer conveyor belt, so the transfer conveyor belt does not bend between the image carriers. Therefore, the transfer material can be stably transported by the transfer conveyor belt and can pass through the transfer position at the specified timing.

[0040] Furthermore, if the linear velocity of the image carriers is set faster than the linear velocity of the transfer transport belt, the force with which the image carriers pull the transfer transport belt downstream in the direction of transfer transport belt movement becomes stronger as the image carrier moves downstream. As a result, the transfer transport belt between the image carriers is pulled by the downstream image carrier with a stronger force than the force with which the upstream image carrier pulls the transfer belt downstream in the direction of transfer transport belt movement between the image carriers, so the transfer transport belt does not sag between the image carriers. Therefore, the transfer material can be stably transported by the transfer transport belt and can pass through the transfer position at the specified timing.

[0041] Furthermore, conventionally, lubricants and the like have been applied to image carriers such as photoreceptors in order to protect the surface layer of the image carrier and to reduce friction between the image carrier and a member that scrapes off and collects toner that has not been transferred to the transfer medium. In conventional technology, if a speed difference is created between the image carrier and the transfer conveyor belt, the lubricant and the like are simultaneously scraped off, which has an adverse effect on the above-mentioned purpose and also has an adverse effect on transfer belt contamination (filming).

[0042] In contrast, according to the present embodiment, in addition to providing a speed difference between the image carrier and the transfer body, by using a specified toner, image quality problems such as hollow areas and filming can be suppressed even when a speed difference is provided between the image carrier and the transfer body, and the image can be used stably for a long period of time.

[0043] (toner) Next, the toner that can be suitably used in this embodiment will be described in detail. The toner of the present invention is characterized in that the average circularity is 0.971 or more and 0.986 or less, and the shape factor SF-2 is 110 or more and 119 or less.

[0044] <Average circularity and shape factor SF-2> The smaller the average circularity value, the more deviated from a spherical shape the toner becomes, resulting in a so-called irregular shape. However, if the average circularity is less than 0.971, transfer performance deteriorates due to transfer dust and the like that occurs during electrostatic transfer, making it difficult to form high-precision images, which is undesirable. On the other hand, the closer the average circularity is to 1, the more spherical the toner becomes, but if it is greater than 0.986, poor cleaning of the toner object to be cleaned, such as the photosensitive member or intermediate transfer belt, occurs, resulting in stains on the image.

[0045] The average circularity is preferably 0.974 or more and 0.984 or less, which not only prevents deterioration in quality but also reduces the electrostatic adhesion force between the photosensitive member and the toner, thereby preventing transfer defects such as hollows even when the speed difference between the photosensitive member and the transfer / conveyor belt is small.

[0046] The average circularity of a toner can be measured as follows. First, a suspension containing test toner particles is passed through a flat-plate imaging detection zone, and particle images are optically captured using a CCD camera. Then, for each particle image, the perimeter of a circle with the same projected area is divided by the perimeter of the actual particle, and the average value is calculated. This average value is the average circularity. To measure the average circularity, for example, a flow particle image analyzer such as the FPIA-2100 (manufactured by Toa Medical Electronics Co., Ltd.) is used. When using this device, 0.1 to 0.5 ml of a surfactant, preferably an alkylbenzene sulfonate, is added as a dispersant to 100 to 150 ml of water from which impurities have been removed, and approximately 0.1 to 0.5 g of the test toner is then added. The suspension is then dispersed in an ultrasonic disperser for approximately 1 to 3 minutes, and the dispersion concentration is adjusted to 3,000 to 10,000 particles / μl. The resulting dispersion is then passed through the above-mentioned device to measure the shape and distribution of the toner particles.

[0047] The shape factor SF-2 is an index that expresses the unevenness of the toner surface. The closer it is to 100, the smoother the surface becomes, becoming a perfect sphere, but just like the average circularity mentioned above, there is an appropriate range for ensuring stable, long-term image formation. If the shape factor SF-2 is less than 110, as mentioned above, the surface approaches a sphere with no unevenness, which can cause poor cleaning of the photosensitive drum, intermediate transfer belt, and other objects to be cleaned, resulting in stains on the image.

[0048] On the other hand, excessive unevenness on the toner surface is also undesirable because it worsens transferability. Therefore, the shape factor SF-2 must be 119 or less. The reason for this deterioration in transferability is not clear, but it is thought that if external additives such as metal inorganic fine particles present on the outermost surface of the toner are present in excessively recessed areas (concave areas), the probability of the external additives being present on the convex areas decreases, resulting in increased adhesion between the photoconductor and the toner.

[0049] The shape factor SF-2 is preferably 112 or more and 117 or less. In this case, cleaning properties can be improved, staining on the image can be further suppressed, and transfer properties can be improved.

[0050] The SF-2 of the toner is calculated by determining the perimeter and projected area of the toner from a two-dimensional projected image of the toner, and then using the following formula. SF-2 = (perimeter) 2 / (projected area)×(1 / 4π)×100

[0051] In this embodiment, the shape factor SF-2 of the toner was calculated by taking an enlarged image of the toner using a scanning electron microscope SU8230 (manufactured by Hitachi High-Technologies Corporation) and using an image analyzer (Luzex III) manufactured by Nireco Corporation. The SF-2 of 100 toner particles was calculated, and the average value was taken as the shape factor SF-2.

[0052] <Organic fine particles> The toner of this embodiment has a toner matrix and a plurality of organic fine particles embedded in the surface of the toner matrix, and it is preferable that the standard deviation of the interparticle distance between adjacent organic fine particles that are not in contact with each other, that is, the standard deviation of the straight-line distance connecting the center of one organic fine particle to the center of another organic fine particle, is 500 nm or less.

[0053] By arranging multiple organic fine particles with gaps on the surface of the toner matrix, it is possible to ensure heat-resistant storage stability without inhibiting heat conduction to the toner during fixing. Furthermore, by arranging the organic fine particles with gaps and uniformly, not only can the above-mentioned effects be further enhanced, but also the adhesion strength of inorganic fine particles such as silica or titanium, when externally added to the surface of the toner matrix, can be optimized. It has been found that this allows a certain amount of the inorganic fine particles to be liberated from the toner matrix during cleaning, and the liberated inorganic fine particles accumulate on the contact surface between the cleaning blade and the photoreceptor, thereby achieving good cleaning performance. Furthermore, by controlling the amount of liberated inorganic fine particles to an appropriate amount, the occurrence of filming can be suppressed.

[0054] The organic fine particles are preferably one or more types of styrene-acrylic resins having at least a carboxylic acid, and are obtained by homopolymerizing or copolymerizing a vinyl monomer. The organic fine particles are preferably composed of two types of styrene-acrylic resins a1 and a2, and more preferably have a core-shell structure with the styrene-acrylic resin a1 as the shell and the styrene-acrylic resin a2 as the core. Among the organic fine particles containing vinyl units composed of resin (a1) and resin (a2), resin (a2) is a polymer obtained by homopolymerizing or copolymerizing a vinyl monomer.

[0055] Examples of the vinyl monomer include the following (1) to (10). (1) Vinyl hydrocarbons Examples of vinyl hydrocarbons include (1-1) aliphatic vinyl hydrocarbons, (1-2) alicyclic vinyl hydrocarbons, and (1-3) aromatic vinyl hydrocarbons.

[0056] (1-1) Aliphatic vinyl hydrocarbons Aliphatic vinyl hydrocarbons include alkenes and alkadienes. Specific examples of alkenes include ethylene, propylene, and α-olefins. Specific examples of alkadienes include butadiene, isoprene, 1,4-pentadiene, 1,6-hexadiene, and 1,7-octadiene.

[0057] (1-2) Alicyclic vinyl hydrocarbons Alicyclic vinyl hydrocarbons include mono- or di-cycloalkenes and alkadienes, and specific examples include (di)cyclopentadiene, terpene, and the like.

[0058] (1-3) Aromatic vinyl hydrocarbons Examples of aromatic vinyl hydrocarbons include styrene and its hydrocarbyl (alkyl, cycloalkyl, aralkyl and / or alkenyl) substituted derivatives, and specific examples include α-methylstyrene, 2,4-dimethylstyrene, and vinylnaphthalene.

[0059] (2) Carboxyl group-containing vinyl monomers and their salts Examples of carboxyl group-containing vinyl monomers and salts thereof include unsaturated monocarboxylic acids (salts) having 3 to 30 carbon atoms, unsaturated dicarboxylic acids (salts), and anhydrides (salts) thereof, and monoalkyl (carbon number 1 to 24) esters thereof or salts thereof. Specific examples include carboxyl group-containing vinyl monomers such as (meth)acrylic acid, (anhydride) maleic acid, maleic acid monoalkyl esters, fumaric acid, fumaric acid monoalkyl esters, crotonic acid, itaconic acid, itaconic acid monoalkyl esters, itaconic acid glycol monoether, citraconic acid, citraconic acid monoalkyl esters, and cinnamic acid, and metal salts thereof.

[0060] In the present invention, the term "(salt)" means an acid or a salt thereof. For example, an unsaturated monocarboxylic acid (salt) having 3 to 30 carbon atoms means an unsaturated monocarboxylic acid or a salt thereof.

[0061] In the present invention, "(meth)acrylic" means methacrylic acid or acrylic acid. In the present invention, "(meth)acryloyl" means methacryloyl or acryloyl. In the present invention, "(meth)acrylate" means methacrylate or acrylate.

[0062] (3) Sulfonic acid group-containing vinyl monomers, vinyl sulfate monoesters, and their salts Examples of sulfonic acid group-containing vinyl monomers, vinyl sulfate monoesters, and salts thereof include alkenesulfonic acids (salts) having 2 to 14 carbon atoms, alkylsulfonic acids (salts) having 2 to 24 carbon atoms, sulfo(hydroxy)alkyl-(meth)acrylates (salts) or (meth)acrylamides (salts), and alkylarylsulfosuccinic acids (salts). Specifically, an example of an alkene sulfonic acid having 2 to 14 carbon atoms is vinyl sulfonic acid (salt), an example of an alkyl sulfonic acid (salt) having 2 to 24 carbon atoms is α-methylstyrene sulfonic acid (salt), and an example of a sulfo(hydroxy)alkyl-(meth)acrylate (salt) or (meth)acrylamide (salt) is sulfopropyl (meth)acrylate (salt), a sulfuric acid ester (salt), or a sulfonic acid group-containing vinyl monomer (salt).

[0063] (4) Phosphate-containing vinyl monomers and their salts Examples of the phosphoric acid group-containing vinyl monomer and its salt include (meth)acryloyloxyalkyl (C1-24) phosphoric acid monoester (salt) and (meth)acryloyloxyalkyl (C1-24) phosphonic acid (salt). Specific examples of the (meth)acryloyloxyalkyl (carbon number 1 to 24) phosphate monoester (salt) include 2-hydroxyethyl (meth)acryloylphosphate (salt) and phenyl-2-acryloyloxyethyl phosphate (salt). Specific examples of (meth)acryloyloxyalkyl (carbon number 1 to 24) phosphonic acids (salts) include 2-acryloyloxyethyl phosphonic acid (salts). Examples of the salts of (2) to (4) above include alkali metal salts (sodium salts, potassium salts, etc.), alkaline earth metal salts (calcium salts, magnesium salts, etc.), ammonium salts, amine salts, and quaternary ammonium salts.

[0064] (5) Hydroxyl group-containing vinyl monomer Examples of hydroxyl group-containing vinyl monomers include hydroxystyrene, N-methylol (meth)acrylamide, hydroxyethyl (meth)acrylate, hydroxypropyl (meth)acrylate, polyethylene glycol mono(meth)acrylate, (meth)allyl alcohol, crotyl alcohol, isocrotyl alcohol, 1-buten-3-ol, 2-buten-1-ol, 2-butene-1,4-diol, propargyl alcohol, 2-hydroxyethyl propenyl ether, and sucrose allyl ether.

[0065] (6) Nitrogen-containing vinyl monomers Examples of the nitrogen-containing vinyl monomer include (6-1) amino group-containing vinyl monomer, (6-2) amide group-containing vinyl monomer, (6-3) nitrile group-containing vinyl monomer, (6-4) quaternary ammonium cation group-containing vinyl monomer, and (6-5) nitro group-containing vinyl monomer.

[0066] (6-1) Examples of amino group-containing vinyl monomers include aminoethyl (meth)acrylate.

[0067] (6-2) Examples of the amide group-containing vinyl monomer include (meth)acrylamide and N-methyl(meth)acrylamide.

[0068] (6-3) Examples of nitrile group-containing vinyl monomers include (meth)acrylonitrile, cyanostyrene, and cyanoacrylate.

[0069] (6-4) Examples of vinyl monomers containing a quaternary ammonium cation group include quaternized products of vinyl monomers containing a tertiary amine group, such as dimethylaminoethyl (meth)acrylate, diethylaminoethyl (meth)acrylate, dimethylaminoethyl (meth)acrylamide, diethylaminoethyl (meth)acrylamide, and diallylamine (which are quaternized using a quaternizing agent, such as methyl chloride, dimethyl sulfate, benzyl chloride, or dimethyl carbonate).

[0070] (6-5) Nitro group-containing vinyl monomers include nitrostyrene.

[0071] (7) Epoxy group-containing vinyl monomer Examples of the epoxy group-containing vinyl monomer include glycidyl (meth)acrylate, tetrahydrofurfuryl (meth)acrylate, and p-vinylphenyl phenyl oxide.

[0072] (8) Halogen-containing vinyl monomers Examples of halogen-containing vinyl monomers include vinyl chloride, vinyl bromide, vinylidene chloride, allyl chloride, chlorostyrene, bromostyrene, dichlorostyrene, chloromethylstyrene, tetrafluorostyrene, and chloroprene.

[0073] (9) Vinyl esters, vinyl (thio)ethers, vinyl ketones (9-1) Examples of vinyl esters include vinyl acetate, vinyl butyrate, vinyl propionate, vinyl butyrate, diallyl phthalate, diallyl adipate, isopropenyl acetate, vinyl methacrylate, methyl 4-vinyl benzoate, cyclohexyl methacrylate, benzyl methacrylate, phenyl (meth)acrylate, vinyl methoxyacetate, vinyl benzoate, ethyl α-ethoxyacrylate, and alkyl (meth)acrylates having an alkyl group of 1 to 50 carbon atoms [methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, butyl (meth)acrylate, 2-ethylhexyl (meth)acrylate, dodecyl (meth)acrylate, hexadecyl (meth)acrylate, heptadecyl (meth)acrylate, octadecyl (meth)acrylate, eicosyl (meth)acrylate, behenyl (meth)acrylate, etc.)], dialkyl fumarate (wherein the two alkyl groups are linear, branched, or alicyclic groups having 2 to 8 carbon atoms), dialkyl vinyl monomers having a polyalkylene glycol chain such as alkyl maleate (two alkyl groups having 2 to 8 carbon atoms and being linear, branched, or alicyclic), poly(meth)allyloxyalkane (diallyloxyethane, triallyloxyethane, tetraallyloxyethane, tetraallyloxypropane, tetraallyloxybutane, tetramethallyloxyethane, etc.), and vinyl monomers having a polyalkylene glycol chain (polyethylene glycol (molecular weight 300) mono(meth)acrylate, polypropylene glycol (molecular weight 500) monoacrylate, methyl alcohol ethylene oxide 10 mol adduct (meth)acrylate, lauryl alcohol ethylene oxide 30 mol adduct (meth)acrylate, etc.], poly(meth)acrylate [poly(meth)acrylate of polyhydric alcohol: ethylene glycol di(meth)acrylate, propylene glycol di(meth)acrylate, neopentyl glycol di(meth)acrylate, trimethylolpropane tri(meth)acrylate, polyethylene glycol di(meth)acrylate, etc.], and the like.

[0074] (9-2) Examples of vinyl (thio)ethers include vinyl methyl ether.

[0075] (9-3) Examples of vinyl ketones include vinyl methyl ketone.

[0076] (10) Other vinyl monomers Other vinyl monomers include tetrafluoroethylene, fluoroacrylate, isocyanatoethyl (meth)acrylate, and m-isopropenyl-α,α-dimethylbenzyl isocyanate.

[0077] In synthesizing the organic fine particles, one of the vinyl monomers (1) to (10) above may be used alone or two or more of them may be used in combination.

[0078] From the viewpoint of low-temperature fixability of the composite resin particles of the present invention, the organic fine particles are preferably styrene-(meth)acrylic acid ester copolymers and (meth)acrylic acid ester copolymers, and more preferably styrene-(meth)acrylic acid ester copolymers. Of the organic fine particles containing vinyl units made of resin (a1) and resin (a2), resin (a2) is a polymer obtained by homopolymerizing or copolymerizing vinyl monomers. Examples of the vinyl monomer include the same ones as those for the polymer of resin (a1). In synthesizing the resin (a2), one of the vinyl monomers (1) to (10) listed above for the resin (a1) may be used alone or in combination of two or more.

[0079] As the resin (a2), from the viewpoint of the low-temperature fixability of the resin particles in the present invention, a styrene-(meth)acrylic acid ester copolymer and a (meth)acrylic acid ester copolymer are preferred, and a styrene-(meth)acrylic acid ester copolymer is more preferred. The viscoelastic loss modulus G'' of the resin (a1) at 100°C and a frequency of 1 Hz is preferably 1.5 to 100 MPa, more preferably 1.7 to 30 MPa, and even more preferably 2.0 to 10 MPa.

[0080] The loss modulus G'' of the viscoelastic properties of resin (a2) at a frequency of 1 Hz and 100°C is preferably 0.01 to 1.0 MPa, more preferably 0.02 to 0.5 MPa, and even more preferably 0.05 to 0.3 MPa. Within this range, toner particles can be easily formed in which resin fine particles containing resin (a1) and resin (a2) as constituent components within the same particle adhere to the surface of the toner particle.

[0081] The loss modulus G" of the viscoelastic properties of resins (a1) and (a2) at a frequency of 1 Hz and 100°C can be adjusted by changing the types and composition ratios of the constituent monomers or by the polymerization conditions (types and amounts of initiator and chain transfer agent, reaction temperature, etc.). Specifically, for example, by using the following composition, it is possible to adjust each G" within the above-mentioned range.

[0082] (1) Regarding the glass transition temperature (Tg1) calculated from the constituent monomers of resin (a1) and the glass transition temperature (Tg2) calculated from the constituent monomers of resin (a2), Tg1 is preferably 0 to 150°C, more preferably 50 to 100°C. Tg2 is preferably -30 to 100°C, more preferably 0 to 80°C, and even more preferably 30 to 60°C.

[0083] The glass transition temperature (Tg) calculated from the constituent monomers is a value that can be calculated by the Fox method. Here, the Fox method [TGFox, Phys. Rev., 86, 652 (1952)] is a method for estimating the Tg of a copolymer from the Tg of each homopolymer, which is represented by the following formula: 1 / Tg=W1 / Tg1+W2 / Tg2++Wn / Tgn

[0084] [In the formula, Tg is the glass transition temperature (expressed in absolute temperature) of the copolymer, Tg1, Tg2...Tgn are the glass transition temperatures (expressed in absolute temperature) of the homopolymers of each monomer component, and W1, W2...Wn are the weight fractions of each monomer component.]

[0085] (2) Regarding the calculated acid value (AV1) of the resin (a1) and the calculated acid value (AV2) of the resin (a2), (AV1) is preferably 75 mgKOH / g to 400 mgKOH / g, more preferably 150 mgKOH / g to 300 mgKOH / g, and (AV2) is preferably 0 mgKOH / g to 50 mgKOH / g, more preferably 0 mgKOH / g to 20 mgKOH / g, and even more preferably 0 mgKOH / g. The calculated acid value is a theoretical acid value calculated from the molar amount of acidic groups contained in the constituent monomers and the total weight of the constituent monomers.

[0086] As a constituent monomer for the resin (a1) that satisfies the conditions (1) and (2), for example, a resin containing styrene as a constituent monomer in an amount of preferably 10 to 80% by weight, more preferably 30 to 60% by weight, based on the total weight of the resin (a1), and a resin containing methacrylic acid and / or acrylic acid in an amount of preferably 10 to 60% by weight, more preferably 30 to 50% by weight in total, based on the total weight of the resin (a1).

[0087] Resin (a2) may, for example, contain styrene as a constituent monomer in an amount of preferably 10 to 100% by weight, more preferably 30 to 90% by weight, based on the total weight of resin (a2), and may also contain methacrylic acid and / or acrylic acid in an amount of preferably 0 to 7.5% by weight, more preferably 0 to 2.5% by weight, based on the total weight of resin (a2).

[0088] (3) By adjusting the polymerization conditions (type and amount of initiator and chain transfer agent, reaction temperature, etc.), the number average molecular weights (Mn1) and (Mn2) of resin (a1) and resin (a2) are adjusted so that (Mn1) is preferably 2,000 to 2,000,000, more preferably 20,000 to 200,000, and (Mn2) is preferably 1,000 to 1,000,000, more preferably 10,000 to 100,000.

[0089] The loss modulus G'' of the viscoelastic properties in the present invention is measured, for example, using the following viscoelasticity measuring device. Apparatus: ARES-24A (Rheometrics) Jig: 25mm parallel plate Frequency: 1Hz Distortion rate: 10% Heating rate: 5℃ / min

[0090] The acid value (AVa1) of the resin (a1) is preferably 75 mgKOH / g to 400 mgKOH / g, more preferably 150 mgKOH / g to 300 mgKOH / g. Within this range, resin fine particles containing vinyl units, which contain the resin (a1) and the resin (a2) as constituent components within the same particle, are easily formed to form particles adhered to the surface of the toner. The resin (a1) having an acid value within this range is a resin that contains methacrylic acid and / or acrylic acid in a total amount of preferably 10 to 60 wt %, more preferably 30 to 50 wt %, based on the total weight of the resin (a1).

[0091] From the viewpoint of low-temperature fixability, the resin (a2) preferably has an acid value (AVa2) of 0 mgKOH / g to 50 mgKOH / g, more preferably 0 mgKOH / g to 20 mgKOH / g, and even more preferably 0 mgKOH / g. Resin (a2) having an acid value within this range is a resin containing methacrylic acid and / or acrylic acid in a total amount of preferably 0 to 7.5% by weight, more preferably 0 to 2.5% by weight, based on the total weight of resin (a2).

[0092] The acid value in the present invention is measured by the method of JIS K0070:1992. The glass transition temperature of the resin (a1) is preferably higher than the glass transition temperature of the resin (a2).Within this range, the ease of forming toner particles in which resin fine particles adhere to the toner surface and the low-temperature fixability of the toner particles of the present invention are well balanced.

[0093] The glass transition temperature of the resin (a1) is more preferably 10° C. or more higher, and particularly preferably 20° C. or more higher, than the glass transition temperature of the resin (a2).

[0094] The glass transition temperature (hereinafter abbreviated as Tg) of the resin (a1) is preferably 0 to 150° C., more preferably 50 to 100° C. If it is 0° C. or higher, the resin particles of the present invention have excellent storage stability, and if it is 150° C. or lower, the low-temperature fixability of the resin particles of the present invention is less hindered.

[0095] The Tg of the resin (a2) is preferably −30 to 100° C., more preferably 0 to 80° C., and even more preferably 30 to 60° C. If it is −30° C. or higher, the resin particles of the present invention have excellent storage stability, and if it is 100° C. or lower, the low-temperature fixability of the resin particles of the present invention is less hindered.

[0096] In the present invention, Tg is measured by the method (DSC) specified in ASTM D3418-82 using a "DSC20, SSC / 580" (manufactured by Seiko Instruments Inc.).

[0097] The solubility parameter (hereinafter abbreviated as SP value) of the resin (a1) is preferably set as follows, from the viewpoint of ease of forming toner particles in which resin fine particles containing the resin (a1) and the resin (a2) as constituent components in the same particle are attached to the surface of the toner particle: That is, it is preferably 9 to 13 (cal / cm 3 ) 1 / 2 , and more preferably 9.5 to 12.5 (cal / cm 3 ) 1 / 2 and more preferably 10.5 to 11.5 (cal / cm 3 ) 1 / 2 The SP value of the resin (a1) can be adjusted by changing the types and composition ratio of the constituent monomers.

[0098] The SP value of the resin (a2) is preferably set as follows, from the viewpoint of ease of forming composite resin particles in which resin fine particles containing the resin (a1) and the resin (a2) as constituent components in the same particle are attached to the surface of the toner particle: that is, preferably 8.5 to 12.5 (cal / cm 3 ) 1 / 2 , and more preferably 9 to 12 (cal / cm 3 ) 1 / 2 and more preferably 10 to 11 (cal / cm 3 ) 1 / 2 The SP value of the resin (a2) can be adjusted by changing the types and composition ratio of the constituent monomers.

[0099] The SP value in the present invention is calculated by the method by Fedors [Polym. Eng. Sci. 14(2)152, (1974)]. From the viewpoint of the Tg of the resin (a1) and copolymerizability with other monomers, the resin (a1) contains, as a constituent monomer, preferably 10 to 80% by weight, more preferably 30 to 60% by weight, based on the total weight of the resin (a1). From the viewpoint of the Tg of the resin (a2) and copolymerizability with other vinyl monomers, the resin (a2) preferably contains 10 to 100% by weight, more preferably 30 to 90% by weight of styrene as a constituent monomer based on the total weight of the resin (a2).

[0100] The number average molecular weight (Mn) of the resin (a1) is preferably 2,000 to 2,000,000, and more preferably 20,000 to 200,000. If it is 2,000 or more, the resin particles in the present invention have excellent storage stability, and if it is 2,000,000 or less, the low-temperature fixability of the resin particles in the present invention is less hindered.

[0101] The weight-average molecular weight of resin (a1) is preferably larger than that of resin (a2).Within this range, the ease of forming toner particles in which resin fine particles adhere to the surface of the toner particles and the low-temperature fixability of the resin particles in the present invention are well balanced.

[0102] The weight average molecular weight of the resin (a1) is more preferably 1.5 times or more, and particularly preferably 2.0 times or more, larger than the weight average molecular weight of the resin (a2).

[0103] The weight average molecular weight (Mw) of the resin (a1) is preferably 20,000 to 20,000,000, and more preferably 200,000 to 2,000,000. If it is 20,000 or more, the resin particles of the present invention have excellent storage stability, and if it is 20,000,000 or less, the low-temperature fixability of the resin particles of the present invention is less hindered.

[0104] The Mn of the resin (a2) is preferably 1,000 to 1,000,000, and more preferably 10,000 to 100,000. If it is 1,000 or more, the resin particles in the present invention have excellent storage stability, and if it is 1,000,000 or less, the resin particles in the present invention have little inhibition of low-temperature fixability.

[0105] The Mw of the resin (a2) is preferably 10,000 to 10,000,000, and more preferably 100,000 to 1,000,000. If it is 10,000 or more, the resin particles in the present invention have excellent storage stability, and if it is 10,000,000 or less, the low-temperature fixability of the resin particles in the present invention is less hindered.

[0106] It is particularly preferred that the Mw of resin (a1) is 200,000 to 2,000,000, the Mw of resin (a2) is 100,000 to 500,000, and that "Mw of (a1)" > "Mw of (a2)".

[0107] In the present invention, Mn and Mw can be measured using gel permeation chromatography (GPC) under the following conditions. Device (example): "HLC-8120" [manufactured by Tosoh Corporation] Column (example): "TSK GEL GMH6" [manufactured by Tosoh Corporation] x 2 Measurement temperature: 40℃ Sample solution: 0.25% by weight tetrahydrofuran solution (insoluble matter filtered off with a glass filter) Solution injection volume: 100μl Detector: Refractive index detector Reference material: 12 standard polystyrenes (TSK standard POLYSTYRENE) (molecular weights: 500, 1,050, 2,800, 5,970, 9,100, 18,100, 37,900, 96,400, 190,000, 355,000, 1,090,000, 2,890,000) [manufactured by Tosoh Corporation]

[0108] The weight ratio of resin (a1) to resin (a2) in the organic fine particles is preferably 5 / 95 to 95 / 5, more preferably 25 / 75 to 75 / 25, and even more preferably 40 / 60 to 60 / 40. When the weight ratio of resin (a1) to resin (a2) is 5 / 95 or more, the composite resin particles have excellent heat-resistant storage stability, and when the weight ratio of resin (a1) to resin (a2) is 95 / 5 or less, toner particles are easily formed in which the resin fine particles adhere to the surfaces of the toner resin particles.

[0109] Methods for producing resin microparticles containing resin (a1) and resin (a2) as constituent components within the same particle include known production methods, such as the following production methods (I) to (V).

[0110] (I) A method of seed polymerization of constituent monomers of resin (a2) using fine particles of resin (a1) in an aqueous dispersion as seeds. (II) A method of seed polymerization of constituent monomers of resin (a1) using fine particles of resin (a2) in an aqueous dispersion as seeds. (III) A method in which a mixture of resin (a1) and resin (a2) is emulsified in an aqueous medium to obtain an aqueous dispersion of resin fine particles. (IV) A method in which a mixture of resin (a1) and constituent monomers of resin (a2) is emulsified in an aqueous medium, and then the constituent monomers of resin (a2) are polymerized to obtain an aqueous dispersion of resin fine particles. (V) A method in which a mixture of resin (a2) and the constituent monomers of resin (a1) is emulsified in an aqueous medium, and then the constituent monomers of resin (a1) are polymerized to obtain an aqueous dispersion of resin fine particles.

[0111] The fact that the organic microparticles (A) contain resin (a1) and resin (a2) as constituent components within the same particle can be confirmed by observing an elemental mapping image of a cut surface of the organic microparticles (A) using a known surface elemental analyzer (TOF-SIMS, EDX-SEM, etc.) and by observing an electron microscope image of a cut surface of the resin microparticles (A) stained with a stain corresponding to the functional groups contained in resin (a1) and resin (a2).

[0112] Furthermore, the microparticles obtained by the above method may be obtained as a mixture containing resin microparticles containing resin (a1) and resin (a2) as constituent components in the same particle, as well as resin microparticles containing only resin (a1) as a constituent resin component and resin microparticles containing only resin (a2) as a constituent resin component. In the composite step described below, the mixture may be used as is, or only the resin microparticles may be isolated and used.

[0113] Specific examples of (I) include a method in which the constituent monomers of (a1) are polymerized dropwise to produce an aqueous dispersion of resin microparticles containing (a1), and then the constituent monomers of (a2) are polymerized using this as a seed; and a method in which (a1), which has been previously produced by solution polymerization or the like, is emulsified and dispersed in water, and then the resulting dispersion is used as a seed to polymerize the constituent monomers of (a2).

[0114] Specific examples of (II) include a method in which the constituent monomers of (a2) are polymerized dropwise to produce an aqueous dispersion of resin microparticles containing (a2), and then the constituent monomers of (a1) are polymerized using this as a seed; and a method in which (a2), which has been previously produced by solution polymerization or the like, is emulsified and dispersed in water, and then the resulting dispersion is used as a seed to polymerize the constituent monomers of (a1).

[0115] A specific example of (III) is a method in which solutions or melts of (a1) and (a2) which have been previously produced by solution polymerization or the like are mixed together, and the mixture is then emulsified and dispersed in an aqueous medium.

[0116] Specific examples of (IV) include a method in which (a1), which has been produced in advance by solution polymerization or the like, is mixed with the constituent monomers of (a2), the mixture is emulsified and dispersed in an aqueous medium, and then the constituent monomers of (a2) are polymerized; and a method in which (a1) is produced in the constituent monomers of (a2), the mixture is emulsified and dispersed in an aqueous medium, and then the constituent monomers of (a2) are polymerized.

[0117] Specific examples of (V) include a method in which (a2), which has been produced in advance by solution polymerization or the like, is mixed with the constituent monomers of (a1), the mixture is emulsified and dispersed in an aqueous medium, and then the constituent monomers of (a1) are polymerized; and a method in which (a2) is produced in the constituent monomers of (a1), the mixture is emulsified and dispersed in an aqueous medium, and then the constituent monomers of (a1) are polymerized.

[0118] Any of the production methods (I) to (V) is suitable.

[0119] The organic fine particles are preferably used as an aqueous dispersion, and the aqueous medium for the dispersion can be any liquid containing water as an essential component, and examples thereof include an aqueous solution containing a surfactant (D) in water.

[0120] The surfactant (D) includes nonionic surfactants (D1), anionic surfactants (D2), cationic surfactants (D3), amphoteric surfactants (D4) and other emulsifying dispersants (D5).

[0121] Furthermore, if necessary, buffering agents such as sodium acetate, sodium citrate, and sodium bicarbonate may be used in appropriate amounts, and protective colloids such as water-soluble cellulose compounds and alkali metal salts of polymethacrylic acid may be used in appropriate amounts. These may be used alone or in combination of two or more.

[0122] Examples of the nonionic surfactant (D1) include AO addition type nonionic surfactants and polyhydric alcohol type nonionic surfactants. Examples of AO-addition type nonionic surfactants include EO adducts of aliphatic alcohols having 10 to 20 carbon atoms, EO adducts of phenols, EO adducts of nonylphenols, EO adducts of alkylamines having 8 to 22 carbon atoms, and EO adducts of poly(oxypropylene) glycols.

[0123] Examples of polyhydric alcohol-type nonionic surfactants include fatty acid (8 to 24 carbon atoms) esters of polyhydric (tri- to octahydric or higher) alcohols (2 to 30 carbon atoms) (e.g., glycerin monostearate, glycerin monooleate, sorbitan monolaurate, and sorbitan monooleate), and alkyl (4 to 24 carbon atoms) poly(degree of polymerization 1 to 10) glycosides.

[0124] Examples of the anionic surfactant (D2) include ethercarboxylic acids or salts thereof having a hydrocarbon group having 8 to 24 carbon atoms, sulfates or ether sulfates having a hydrocarbon group having 8 to 24 carbon atoms and salts thereof, sulfonates having a hydrocarbon group having 8 to 24 carbon atoms, sulfosuccinates having one or two hydrocarbon groups having 8 to 24 carbon atoms, phosphates or ether phosphates having a hydrocarbon group having 8 to 24 carbon atoms and salts thereof, fatty acid salts having a hydrocarbon group having 8 to 24 carbon atoms, and acylated amino acid salts having a hydrocarbon group having 8 to 24 carbon atoms.

[0125] Specifically, examples of ethercarboxylic acids or salts thereof having a hydrocarbon group with 8 to 24 carbon atoms include sodium lauryl ether acetate and (poly)oxyethylene (number of moles added: 1 to 100) sodium lauryl ether acetate. Examples of sulfates or ether sulfates having a hydrocarbon group having 8 to 24 carbon atoms and salts thereof include sodium lauryl sulfate, (poly)oxyethylene (number of moles added: 1 to 100) sodium lauryl sulfate, (poly)oxyethylene (number of moles added: 1 to 100) triethanolamine lauryl sulfate, and (poly)oxyethylene (number of moles added: 1 to 100) sodium coconut oil fatty acid monoethanolamide sulfate. Examples of sulfonates having a hydrocarbon group with 8 to 24 carbon atoms include sodium dodecylbenzenesulfonate. Examples of the phosphate ester or ether phosphate ester having a hydrocarbon group with 8 to 24 carbon atoms and salts thereof include sodium lauryl phosphate and sodium (poly)oxyethylene (addition mole number 1 to 100) lauryl ether phosphate. Examples of the fatty acid salt having a hydrocarbon group with 8 to 24 carbon atoms include sodium laurate and triethanolamine laurate. Examples of acylated amino acid salts having a hydrocarbon group having 8 to 24 carbon atoms include sodium coconut oil fatty acid methyl taurate, sodium coconut oil fatty acid sarcosine, triethanolamine coconut oil fatty acid sarcosine, triethanolamine N-coconut oil fatty acid acyl-L-glutamate, sodium N-coconut oil fatty acid acyl-L-glutamate, and sodium lauroylmethyl-β-alanine.

[0126] The cationic surfactant (D3) may be a quaternary ammonium salt type or an amine salt type. Specific examples of the quaternary ammonium salt type include stearyltrimethylammonium chloride, behenyltrimethylammonium chloride, distearyldimethylammonium chloride, and lanolin fatty acid aminopropylethyldimethylammonium ethyl sulfate. Examples of the amine salt type include stearic acid diethylaminoethylamide lactate, dilaurylamine hydrochloride, and oleylamine lactate.

[0127] Examples of the amphoteric surfactant (D4) include betaine-type amphoteric surfactants and amino acid-type amphoteric surfactants. Examples of betaine-type amphoteric surfactants include coconut oil fatty acid amidopropyl dimethylaminoacetic acid betaine, lauryl dimethylaminoacetic acid betaine, 2-alkyl-N-carboxymethyl-N-hydroxyethyl imidazolinium betaine, and lauryl hydroxysulfobetaine. Examples of the amino acid type amphoteric surfactant include sodium β-laurylaminopropionate.

[0128] Other emulsifying dispersants (D5) include, for example, reactive activators [which are not particularly limited as long as they have radical reactivity, and specifically include ADEKA REASOAP {registered trademark, manufactured by ADEKA Corporation} SE-10N, SR-10, SR-20, SR-30, ER-20, ER-30, AQUALON {registered trademark, manufactured by Dai-ichi Kogyo Seiyaku Co., Ltd.} HS-10, KH-05, KH-10, KH-1025, ELEMINOL {registered trademark, manufactured by Sanyo Chemical Industries, Ltd.} JS-20, LATEMUL {registered trademark, manufactured by Kao Corporation} PD-104, PD-420, PD-4 30, IONET (registered trademark, manufactured by Sanyo Chemical Industries, Ltd.) MO-200), polyvinyl alcohol, starch and its derivatives, cellulose derivatives such as carboxymethyl cellulose, methyl cellulose, and hydroxyethyl cellulose, carboxyl group-containing (co)polymers such as poly(sodium acrylate), and emulsifying dispersants having urethane groups or ester groups described in U.S. Pat. No. 5,906,704 (for example, polycaprolactone polyol and polyether diol linked with polyisocyanate).

[0129] As the surfactant (D), from the viewpoint of stabilizing oil droplets during emulsification and dispersion, obtaining a desired shape, and sharpening the particle size distribution, (D1), (D2), (D5), and combinations of these are preferred, and a combination of (D1) and (D5), and a combination of (D2) and (D5) are more preferred.

[0130] The resin microparticles of the present invention may contain, in addition to resin (a1) and resin (a2), other resin components, an initiator (and its residue), a chain transfer agent, an antioxidant, a plasticizer, a preservative, a reducing agent, an organic solvent, and the like.

[0131] Examples of other resin components include vinyl resins other than those used in resin (a1) and resin (a2), polyurethane resins, epoxy resins, polyester resins, polyamide resins, polyimide resins, silicon resins, phenolic resins, melamine resins, urea resins, aniline resins, ionomer resins, and polycarbonate resins.

[0132] Examples of the initiator (and its residue) include known radical polymerization initiators, and specific examples include persulfate initiators such as potassium persulfate and ammonium persulfate, azo initiators such as azobisisobutyronitrile, organic peroxides such as benzoyl peroxide, cumene hydroperoxide, tertiary butyl hydroperoxide, tertiary butyl peroxyisopropyl monocarbonate and tertiary butyl peroxybenzoate, and hydrogen peroxide.

[0133] Examples of the chain transfer agent include n-dodecyl mercaptan, tert-dodecyl mercaptan, n-butyl mercaptan, 2-ethylhexyl thioglycolate, 2-mercaptoethanol, β-mercaptopropionic acid, and α-methylstyrene dimer.

[0134] Examples of the antioxidant include phenol compounds, paraphenylenediamine, hydroquinone, organic sulfur compounds, and organic phosphorus compounds.

[0135] The phenolic compounds include 2,6-di-t-butyl-p-cresol, butylated hydroxyanisole, 2,6-di-t-butyl-4-ethylphenol, stearyl-β-(3,5-di-t-butyl-4-hydroxyphenyl)propionate, 2,2'-methylene-bis-(4-methyl-6-t-butylphenol), 2,2'-methylene-bis-(4-ethyl-6-t-butylphenol), 4,4'-thiobis-(3-methyl-6-t-butylphenol), 4,4'-butylidenebis-(3-methyl 1,1,3-tris-(2-methyl-4-hydroxy-5-t-butylphenyl)butane, 1,3,5-trimethyl-2,4,6-tris(3,5-di-t-butyl-4-hydroxybenzyl)benzene, tetrakis-[methylene-3-(3',5'-di-t-butyl-4'-hydroxyphenyl)propionate]methane, bis[3,3'-bis(4'-hydroxy-3'-t-butylphenyl)butyric acid]glycol ester, and tocopherol.

[0136] Examples of paraphenylenediamines include N-phenyl-N'-isopropyl-p-phenylenediamine, N,N'-di-sec-butyl-p-phenylenediamine, N-phenyl-N-sec-butyl-p-phenylenediamine, N,N'-di-isopropyl-p-phenylenediamine, and N,N'-dimethyl-N,N'-di-t-butyl-p-phenylenediamine.

[0137] Examples of hydroquinones include 2,5-di-t-octylhydroquinone, 2,6-didodecylhydroquinone, 2-dodecylhydroquinone, 2-dodecyl-5-chlorohydroquinone, 2-t-octyl-5-methylhydroquinone, and 2-(2-octadecenyl)-5-methylhydroquinone.

[0138] Examples of the organic sulfur compounds include dilauryl-3,3'-thiodipropionate, distearyl-3,3'-thiodipropionate, and ditetradecyl-3,3'-thiodipropionate.

[0139] Examples of the organic phosphorus compound include triphenylphosphine, tri(nonylphenyl)phosphine, tri(dinonylphenyl)phosphine, tricresylphosphine, and tri(2,4-dibutylphenoxy)phosphine.

[0140] Examples of the plasticizer include phthalate esters, aliphatic dibasic acid esters, trimellitate esters, phosphate esters, and fatty acid esters. Specific examples of the phthalate esters include dibutyl phthalate, dioctyl phthalate, butyl benzyl phthalate, and diisodecyl phthalate. Examples of the aliphatic dibasic acid ester include di-2-ethylhexyl adipate and 2-ethylhexyl sebacate. Examples of trimellitic acid esters include tri-2-ethylhexyl trimellitate and trioctyl trimellitate. Examples of the phosphate ester include triethyl phosphate, tri-2-ethylhexyl phosphate, and tricresyl phosphate. Examples of fatty acid esters include butyl oleate. Examples of preservatives include organic nitrogen sulfur compound preservatives and organic sulfur halide preservatives.

[0141] Examples of reducing agents include reducing organic compounds such as ascorbic acid, tartaric acid, citric acid, glucose, and formaldehyde sulfoxylate metal salts, and reducing inorganic compounds such as sodium thiosulfate, sodium sulfite, sodium bisulfite, and sodium metabisulfite.

[0142] Examples of organic solvents include ketone solvents [e.g., acetone and methyl ethyl ketone (hereinafter abbreviated as MEK)], ester solvents (e.g., ethyl acetate and γ-butyrolactone), ether solvents (e.g., THF), amide solvents (e.g., N,N-dimethylformamide, N,N-dimethylacetamide, N-methyl-2-pyrrolidone, and N-methylcaprolactam), alcohol solvents (e.g., isopropyl alcohol), and aromatic hydrocarbon solvents (e.g., toluene and xylene).

[0143] <Other toner raw materials> The toner may contain other components as needed in colored particles containing, for example, a binder resin, a colorant, and a release agent. In addition, metal oxides are used as external additives in the form of inorganic fine particles in the colored particles.

[0144] <<Crystalline resin>> The "crystalline" of the crystalline resin in the present invention preferably means that the ratio of the softening temperature measured with a Koka type flow tester to the maximum peak temperature of the heat of fusion measured with a differential scanning calorimeter (DSC) (softening temperature / maximum peak temperature of the heat of fusion) is 0.80 to 1.55, and the resin has the property of being rapidly softened by heat, and a resin having this property is referred to as a "crystalline resin." Furthermore, "amorphous" refers to a property in which the ratio of the softening temperature to the maximum peak temperature of the heat of fusion (softening temperature / maximum peak temperature of the heat of fusion) is greater than 1.55 and the resin softens slowly when heated, and a resin having this property is called an "amorphous resin."

[0145] The softening temperatures of the resin and toner can be measured using a high-temperature flow tester (for example, CFT-500D (manufactured by Shimadzu Corporation)). 1 g of the resin sample is heated at a temperature increase rate of 3°C / min, and a pressure of 30 kg / cm is applied using a plunger. 2 The sample was extruded from a nozzle with a diameter of 0.5 mm and a length of 1 mm under a load of 0.5 mm, and the plunger depression of the flow tester was plotted against the temperature. The temperature at which half of the sample flowed out was taken as the softening temperature.

[0146] The maximum peak temperatures of the heat of fusion of resins and toners can be measured using a differential scanning calorimeter (DSC) (e.g., the TA-60WS and DSC-60 (Shimadzu Corporation)). The sample used for measuring the maximum peak temperatures of the heat of fusion is pretreated by melting it at 130°C, then cooling it from 130°C to 70°C at a rate of 1.0°C / min, and then cooling it from 70°C to 10°C at a rate of 0.5°C / min. The DSC is then used to measure the endothermic and heat-generating changes by raising the temperature at a rate of 20°C / min. A graph of "endothermic and heat-generating amounts" versus "temperature" is plotted, and the endothermic peak temperature observed between 20°C and 100°C is designated "Ta*." If there are multiple endothermic peaks, the temperature of the peak with the largest endothermic amount is designated "Ta*." The sample is then stored at (Ta*-10)°C for 6 hours, followed by another 6 hours at (Ta*-15)°C. Next, the sample was cooled to 0°C at a rate of 10°C / min using DSC, and then heated at a rate of 20°C / min to measure the endothermic and exothermic changes. A similar graph was drawn, and the temperature corresponding to the maximum peak of the endothermic and exothermic amounts was taken as the maximum peak temperature of the heat of fusion during the second heating. The heat of fusion at that time can be calculated from the area (peak area) from the temperature at which the endotherm begins to the temperature at which it ends.

[0147] <<Crystalline polyester resin>> Due to its high crystallinity, crystalline polyester resin (hereinafter sometimes referred to as "crystalline polyester resin C") exhibits a thermal melting characteristic that causes a sudden increase in viscosity near the fixing start temperature. By using crystalline polyester resin C with such characteristics together with an amorphous polyester resin, the crystallinity improves heat-resistant storage stability up to just before the melting start temperature. Furthermore, at the melting start temperature, the crystalline polyester resin C melts, causing a sudden decrease in viscosity (sharp melting), which then becomes compatible with the amorphous polyester resin B described below. Both resins rapidly decrease in viscosity, resulting in fixing. This results in a toner that combines good heat-resistant storage stability and low-temperature fixing properties. Furthermore, the release width (the difference between the minimum fixing temperature and the temperature at which high-temperature offset resistance occurs) also shows favorable results.

[0148] The crystalline polyester resin C can be obtained by using a polyhydric alcohol and a polycarboxylic acid or a derivative thereof, such as a polycarboxylic acid, a polycarboxylic acid anhydride, or a polycarboxylic acid ester.

[0149] In the present invention, crystalline polyester resin C refers to a resin obtained by using a polyhydric alcohol and a polycarboxylic acid or a derivative thereof, such as a polycarboxylic acid, a polycarboxylic acid anhydride, or a polycarboxylic acid ester, as described above. Modified polyester resins, such as the prepolymers described below, and resins obtained by subjecting the prepolymers to a crosslinking and / or elongation reaction, do not fall under the category of crystalline polyester resin C.

[0150] -Polyhydric alcohol- The polyhydric alcohol is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include diols and trihydric or higher alcohols. Examples of the diol include saturated aliphatic diols. Examples of the saturated aliphatic diols include linear saturated aliphatic diols and branched saturated aliphatic diols. Among these, linear saturated aliphatic diols are preferred, and linear saturated aliphatic diols having 2 to 12 carbon atoms are more preferred. If the saturated aliphatic diol is branched, the crystallinity of the crystalline polyester resin C may decrease, resulting in a lower melting point. Furthermore, if the saturated aliphatic diol has more than 12 carbon atoms, it becomes difficult to obtain a practical material. It is more preferred that the number of carbon atoms is 12 or less.

[0151] Examples of the saturated aliphatic diol include ethylene glycol, 1,3-propanediol, 1,4-butanediol, 1,5-pentanediol, 1,6-hexanediol, 1,7-heptanediol, 1,8-octanediol, 1,9-nonanediol, 1,10-decanediol, 1,11-undecanediol, 1,12-dodecanediol, 1,13-tridecanediol, 1,14-tetradecanediol, 1,18-octadecanediol, 1,14-eicosanedecanediol, etc. Among these, ethylene glycol, 1,4-butanediol, 1,6-hexanediol, 1,8-octanediol, 1,10-decanediol, and 1,12-dodecanediol are preferred because they provide the crystalline polyester resin C with high crystallinity and excellent sharp melt properties. Examples of the trihydric or higher alcohol include glycerin, trimethylolethane, trimethylolpropane, and pentaerythritol. These may be used alone or in combination of two or more.

[0152] -Polycarboxylic Acids- The polycarboxylic acid is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include dicarboxylic acids and tricarboxylic or higher carboxylic acids. Examples of the dicarboxylic acid include saturated aliphatic dicarboxylic acids such as oxalic acid, succinic acid, glutaric acid, adipic acid, suberic acid, azelaic acid, sebacic acid, 1,9-nonanedicarboxylic acid, 1,10-decanedicarboxylic acid, 1,12-dodecanedicarboxylic acid, 1,14-tetradecanedicarboxylic acid, and 1,18-octadecanedicarboxylic acid; and aromatic dicarboxylic acids such as dibasic acids such as phthalic acid, isophthalic acid, terephthalic acid, naphthalene-2,6-dicarboxylic acid, malonic acid, and mesaconic acid; and further include anhydrides and lower (C1 to C3) alkyl esters of these.

[0153] Examples of the trivalent or higher carboxylic acid include 1,2,4-benzenetricarboxylic acid, 1,2,5-benzenetricarboxylic acid, 1,2,4-naphthalenetricarboxylic acid, anhydrides thereof, and lower (C1 to C3) alkyl esters thereof. The polycarboxylic acid may include a dicarboxylic acid having a sulfonic acid group in addition to the saturated aliphatic dicarboxylic acid and aromatic dicarboxylic acid, and may further include a dicarboxylic acid having a double bond in addition to the saturated aliphatic dicarboxylic acid and aromatic dicarboxylic acid. These may be used alone or in combination of two or more.

[0154] The crystalline polyester resin C is preferably composed of a linear saturated aliphatic dicarboxylic acid having from 4 to 12 carbon atoms and a linear saturated aliphatic diol having from 2 to 12 carbon atoms. That is, the crystalline polyester resin C preferably has a structural unit derived from a saturated aliphatic dicarboxylic acid having from 4 to 12 carbon atoms and a structural unit derived from a saturated aliphatic diol having from 2 to 12 carbon atoms. This is preferable in that the resin has high crystallinity and excellent sharp melting properties, and can therefore exhibit excellent low-temperature fixability.

[0155] The melting point of the crystalline polyester resin C is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 60° C. or higher and 80° C. or lower. If the melting point is lower than 60° C., the crystalline polyester resin C tends to melt at low temperatures, which may reduce the heat-resistant storage stability of the toner. If the melting point is higher than 80° C., the crystalline polyester resin C may not melt sufficiently due to heating during fixing, which may reduce the low-temperature fixability.

[0156] The molecular weight of the crystalline polyester resin C is not particularly limited and can be appropriately selected depending on the purpose. From the viewpoint that a low molecular weight resin with a sharp molecular weight distribution provides excellent low-temperature fixability, and a large amount of low-molecular weight components reduces heat-resistant storage stability, the orthodichlorobenzene-soluble portion of the crystalline polyester resin C preferably has a weight-average molecular weight (Mw) of 3,000 to 30,000, a number-average molecular weight (Mn) of 1,000 to 10,000, and an Mw / Mn of 1.0 to 10, as measured by GPC. More preferably, the weight-average molecular weight (Mw) is 5,000 to 15,000, a number-average molecular weight (Mn) of 2,000 to 10,000, and an Mw / Mn of 1.0 to 5.0.

[0157] The acid value of the crystalline polyester resin C is not particularly limited and can be appropriately selected depending on the purpose. From the viewpoint of affinity between paper and resin, in order to achieve the desired low-temperature fixability, the acid value is preferably 5 mgKOH / g or more, more preferably 10 mgKOH / g or more. On the other hand, in order to improve high-temperature offset resistance, the acid value is preferably 45 mgKOH / g or less.

[0158] The hydroxyl value of the crystalline polyester resin C is not particularly limited and can be appropriately selected depending on the purpose. In order to achieve the desired low-temperature fixability and good charging characteristics, the hydroxyl value is preferably 0 mgKOH / g to 50 mgKOH / g, and more preferably 5 mgKOH / g to 50 mgKOH / g.

[0159] The molecular structure of the crystalline polyester resin C can be confirmed by NMR measurement of a solution or a solid, as well as by X-ray diffraction, GC / MS, LC / MS, IR measurement, etc. -1 or 990±10cm -1 In this method, a crystalline polyester resin C is detected as a resin having absorption based on δCH (out-of-plane bending vibration) of olefin.

[0160] The content of the crystalline polyester resin C is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 3 to 20 parts by mass, more preferably 5 to 15 parts by mass, relative to 100 parts by mass of the toner. If the content is less than 3 parts by mass, the sharp melting effect of the crystalline polyester resin C may be insufficient, resulting in poor low-temperature fixability. If the content exceeds 20 parts by mass, the heat-resistant storage stability may decrease and image fogging may occur easily. If the content is within the above more preferred range, it is advantageous in that both high image quality and low-temperature fixability are excellent.

[0161] <<Amorphous polyester resin>> The amorphous polyester resin is not particularly limited and can be appropriately selected depending on the purpose. It is preferable that the amorphous polyester resin contains an amorphous polyester resin A and an amorphous polyester resin B, which will be described below.

[0162] <<Amorphous polyester resin A>> The amorphous polyester resin A is not particularly limited and can be appropriately selected depending on the purpose. It preferably has a glass transition temperature (Tg) of -40°C or higher and 20°C or lower.

[0163] The amorphous polyester resin A is not particularly limited and can be appropriately selected depending on the purpose, but is preferably obtained by reacting a non-linear reactive precursor with a curing agent. Furthermore, the amorphous polyester resin A preferably contains at least one of a urethane bond and a urea bond, from the viewpoint of superior adhesion to recording media such as paper. When the amorphous polyester resin A contains either a urethane bond or a urea bond, the urethane bond or the urea bond behaves like a pseudo-crosslinking point, enhancing the rubber-like properties of the amorphous polyester resin A and resulting in superior heat-resistant storage stability and high-temperature offset resistance of the toner.

[0164] -Nonlinear reactive precursors- The non-linear reactive precursor is not particularly limited as long as it is a polyester resin (hereinafter sometimes referred to as a "prepolymer") having a group capable of reacting with the curing agent, and can be appropriately selected depending on the purpose.

[0165] Examples of the group in the prepolymer that can react with the curing agent include a group that can react with an active hydrogen group. Examples of the group capable of reacting with the active hydrogen group include an isocyanate group, an epoxy group, a carboxylic acid, an acid chloride group, etc. Among these, an isocyanate group is preferred because it can introduce a urethane bond or a urea bond into the amorphous polyester resin.

[0166] The prepolymer is non-linear. The non-linear structure means that the prepolymer has a branched structure imparted by at least one of a trivalent or higher alcohol and a trivalent or higher carboxylic acid. The prepolymer is preferably a polyester resin containing an isocyanate group.

[0167] --Polyester resin containing isocyanate groups-- The polyester resin containing an isocyanate group is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include a reaction product of a polyester resin having an active hydrogen group with a polyisocyanate. The polyester resin having an active hydrogen group can be obtained, for example, by polycondensation of a diol, a dicarboxylic acid, and at least one of a trivalent or higher alcohol and a trivalent or higher carboxylic acid. The trivalent or higher alcohol and the trivalent or higher carboxylic acid impart a branched structure to the polyester resin containing an isocyanate group.

[0168] ---Diol--- The diol is not particularly limited and can be appropriately selected depending on the purpose. Examples of the alkylene oxide include aliphatic diols such as ethylene glycol, 1,2-propylene glycol, 1,3-propylene glycol, 1,4-butanediol, 3-methyl-1,5-pentanediol, 1,6-hexanediol, 1,8-octanediol, 1,10-decanediol, and 1,12-dodecanediol; diols having an oxyalkylene group such as diethylene glycol, triethylene glycol, dipropylene glycol, polyethylene glycol, polypropylene glycol, and polytetramethylene glycol; alicyclic diols such as 1,4-cyclohexanedimethanol and hydrogenated bisphenol A; alkylene oxide adducts of bisphenols such as ethylene oxide, propylene oxide, and butylene oxide added to alicyclic diols; bisphenols such as bisphenol A, bisphenol F, and bisphenol S; and alkylene oxide adducts of bisphenols such as ethylene oxide, propylene oxide, and butylene oxide added to bisphenols. Among these, aliphatic diols having 4 to 12 carbon atoms are preferred. These diols may be used alone or in combination of two or more.

[0169] ---Dicarboxylic acid--- The dicarboxylic acid is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include aliphatic dicarboxylic acids, aromatic dicarboxylic acids, etc. Furthermore, anhydrides, lower (1 to 3 carbon atoms) alkyl esters, or halides of these may also be used.

[0170] The aliphatic dicarboxylic acid is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include succinic acid, adipic acid, sebacic acid, dodecanedioic acid, maleic acid, and fumaric acid. The aromatic dicarboxylic acid is not particularly limited and can be appropriately selected depending on the purpose, but is preferably an aromatic dicarboxylic acid having 8 to 20 carbon atoms. The aromatic dicarboxylic acid having 8 to 20 carbon atoms is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include phthalic acid, isophthalic acid, terephthalic acid, and naphthalenedicarboxylic acid. Among these, aliphatic dicarboxylic acids having 4 to 12 carbon atoms are preferred. These dicarboxylic acids may be used alone or in combination of two or more.

[0171] ---Trihydric or higher alcohols--- The trihydric or higher alcohol is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include trihydric or higher aliphatic alcohols, trihydric or higher polyphenols, and alkylene oxide adducts of trihydric or higher polyphenols. Examples of the trivalent or higher aliphatic alcohol include glycerin, trimethylolethane, trimethylolpropane, pentaerythritol, and sorbitol. Examples of the trivalent or higher polyphenols include trisphenol PA, phenol novolac, and cresol novolac. Examples of the alkylene oxide adducts of trivalent or higher polyphenols include those obtained by adding alkylene oxides such as ethylene oxide, propylene oxide, and butylene oxide to trivalent or higher polyphenols.

[0172] The amorphous polyester resin A preferably contains a trivalent or higher aliphatic alcohol as a constituent. The trivalent or higher aliphatic alcohol contained in the amorphous polyester resin A provides a branched structure in the molecular skeleton, forming a three-dimensional network structure in the molecular chain. This provides rubber-like properties, such as deformation at low temperatures but not flowing. This allows the toner to maintain its heat-resistant storage stability and high-temperature offset resistance.

[0173] The amorphous polyester resin A can also use trivalent or higher carboxylic acids, epoxy, etc. as crosslinking components. However, in this case, in the case of carboxylic acids, the ester bond density at the crosslinked portion is often high, and therefore the gloss of the fixed image produced by heat fixing the toner may not be fully expressed. When a crosslinking agent such as epoxy is used, the crosslinking reaction must be carried out after polymerization of the polyester, making it difficult to control the distance between crosslinking points, making it impossible to obtain the desired viscoelasticity. In addition, the crosslinked portion is likely to react with the oligomer during polyester production, resulting in high crosslink density, which can cause unevenness in the fixed image and poor gloss and image density.

[0174] ---Trivalent or higher carboxylic acids--- The trivalent or higher carboxylic acid is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include trivalent or higher aromatic carboxylic acids. Furthermore, anhydrides, lower (1 to 3 carbon atoms) alkyl esters, or halides of these may also be used. The trivalent or higher aromatic carboxylic acid is preferably a trivalent or higher aromatic carboxylic acid having 9 to 20 carbon atoms. Examples of the trivalent or higher aromatic carboxylic acid having 9 to 20 carbon atoms include trimellitic acid and pyromellitic acid.

[0175] ---Polyisocyanate--- The polyisocyanate is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include diisocyanates and tri- or higher valent isocyanates. Examples of the diisocyanate include aliphatic diisocyanates, alicyclic diisocyanates, aromatic diisocyanates, araliphatic diisocyanates, isocyanurates, and those obtained by blocking these with phenol derivatives, oximes, caprolactam, etc. The aliphatic diisocyanate is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include tetramethylene diisocyanate, hexamethylene diisocyanate, methyl 2,6-diisocyanatocaproate, octamethylene diisocyanate, decamethylene diisocyanate, dodecamethylene diisocyanate, tetradecamethylene diisocyanate, trimethylhexane diisocyanate, and tetramethylhexane diisocyanate. The alicyclic diisocyanate is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include isophorone diisocyanate and cyclohexylmethane diisocyanate. The aromatic diisocyanate is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include tolylene diisocyanate, diisocyanatodiphenylmethane, 1,5-naphthylene diisocyanate, 4,4′-diisocyanatodiphenyl, 4,4′-diisocyanato-3,3′-dimethyldiphenyl, 4,4′-diisocyanato-3-methyldiphenylmethane, and 4,4′-diisocyanato-diphenyl ether. The aromatic aliphatic diisocyanate is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include α,α,α',α'-tetramethylxylylene diisocyanate. The isocyanurates are not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include tris(isocyanatoalkyl)isocyanurate and tris(isocyanatocycloalkyl)isocyanurate. These polyisocyanates may be used alone or in combination of two or more.

[0176] - Hardener - The curing agent is not particularly limited and can be appropriately selected depending on the purpose as long as it can react with the non-linear reactive precursor to produce the amorphous polyester resin A. For example, an active hydrogen group-containing compound can be used.

[0177] --Compounds containing active hydrogen groups-- The active hydrogen group in the active hydrogen group-containing compound is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include a hydroxyl group (alcoholic hydroxyl group and phenolic hydroxyl group), an amino group, a carboxyl group, a mercapto group, etc. These may be used alone or in combination of two or more. The active hydrogen group-containing compound is not particularly limited and can be appropriately selected depending on the purpose, but amines are preferred because they are capable of forming a urea bond. The amines are not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include diamines, trivalent or higher amines, amino alcohols, amino mercaptans, amino acids, and compounds in which the amino group of these is blocked. These may be used alone or in combination of two or more.

[0178] Among these, diamines and mixtures of diamines with small amounts of trivalent or higher amines are preferred. The diamine is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include aromatic diamines, alicyclic diamines, and aliphatic diamines. The aromatic diamine is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include phenylenediamine, diethyltoluenediamine, and 4,4'-diaminodiphenylmethane. The alicyclic diamine is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include 4,4'-diamino-3,3'-dimethyldicyclohexylmethane, diaminocyclohexane, and isophoronediamine. The aliphatic diamine is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include ethylenediamine, tetramethylenediamine, and hexamethylenediamine. The trivalent or higher amine is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include diethylenetriamine and triethylenetetramine. The amino alcohol is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include ethanolamine and hydroxyethylaniline. The amino mercaptan is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include aminoethyl mercaptan and aminopropyl mercaptan. The amino acid is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include aminopropionic acid and aminocaproic acid. The compound in which the amino group is blocked is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include ketimine compounds and oxazoline compounds obtained by blocking the amino group with ketones such as acetone, methyl ethyl ketone, and methyl isobutyl ketone.

[0179] The amorphous polyester resin A preferably contains a diol component as a constituent component, and the diol component preferably contains 50% by mass or more of an aliphatic diol having from 4 to 12 carbon atoms. In this case, the Tg of the amorphous polyester resin A can be lowered, making it easier to impart the property of deformation at low temperatures.

[0180] The amorphous polyester resin A preferably contains 50% by mass or more of an aliphatic diol having 4 to 12 carbon atoms in all alcohol components. In this case, the Tg of the amorphous polyester resin A can be lowered, and the amorphous polyester resin A can be easily imparted with the property of deformation at low temperatures.

[0181] Preferably, the amorphous polyester resin A contains a dicarboxylic acid component as a constituent, and the dicarboxylic acid component contains 50% by mass or more of an aliphatic dicarboxylic acid having from 4 to 12 carbon atoms. In this case, the Tg of the amorphous polyester resin A can be lowered, making it easier to impart the property of deformation at low temperatures.

[0182] The weight-average molecular weight of the amorphous polyester resin A is not particularly limited and can be appropriately selected depending on the purpose. As measured by GPC (gel permeation chromatography), it is preferably 20,000 to 1,000,000, more preferably 50,000 to 300,000, and particularly preferably 100,000 to 200,000. If the weight-average molecular weight is less than 20,000, the toner may tend to flow at low temperatures, resulting in poor heat-resistant storage stability. Furthermore, the viscosity during melting may be reduced, resulting in poor high-temperature offset properties.

[0183] The molecular structure of the amorphous polyester resin A can be confirmed by NMR measurement using a solution or a solid, as well as by X-ray diffraction, GC / MS, LC / MS, IR measurement, etc. -1 and 990±10cm -1 One method is to detect amorphous polyester resins that do not have absorption due to olefin δCH (out-of-plane bending vibration).

[0184] The content of the amorphous polyester resin A is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 5 to 25 parts by mass, more preferably 10 to 20 parts by mass, relative to 100 parts by mass of the toner. If the content is less than 5 parts by mass, low-temperature fixability and high-temperature offset resistance may deteriorate, while if it exceeds 25 parts by mass, heat-resistant storage stability may deteriorate and the glossiness of the image obtained after fixing may decrease. If the content is within the above more preferred range, it is advantageous in that all of low-temperature fixability, high-temperature offset resistance, and heat-resistant storage stability are excellent.

[0185] <<Amorphous Polyester Resin B>> The amorphous polyester resin B preferably has a glass transition temperature (Tg) of, for example, 40°C or more and 80°C or less. The amorphous polyester resin B is preferably a linear polyester resin. An unmodified polyester resin is preferred as the amorphous polyester resin B. The unmodified polyester resin is a polyester resin obtained from a polyhydric alcohol and a polycarboxylic acid or a derivative thereof, such as a polycarboxylic acid, a polycarboxylic acid anhydride, or a polycarboxylic acid ester, and is not modified with an isocyanate compound or the like. The amorphous polyester resin B preferably does not contain a urethane bond or a urea bond.

[0186] The amorphous polyester resin B preferably contains a dicarboxylic acid component as a constituent, and the dicarboxylic acid component preferably contains 50 mol % or more of terephthalic acid, which is advantageous in terms of heat-resistant storage stability. Examples of the polyhydric alcohol include diols. Examples of the diol include alkylene (carbon number 2 to 3) oxide (average number of added moles 1 to 10) adducts of bisphenol A such as polyoxypropylene(2.2)-2,2-bis(4-hydroxyphenyl)propane and polyoxyethylene(2.2)-2,2-bis(4-hydroxyphenyl)propane; ethylene glycol, propylene glycol; hydrogenated bisphenol A, and alkylene (carbon number 2 to 3) oxide (average number of added moles 1 to 10) adducts of hydrogenated bisphenol A. These may be used alone or in combination of two or more.

[0187] Examples of the polycarboxylic acid include dicarboxylic acids. Examples of the dicarboxylic acid include adipic acid, phthalic acid, isophthalic acid, terephthalic acid, fumaric acid, maleic acid; and succinic acids substituted with an alkyl group having 1 to 20 carbon atoms or an alkenyl group having 2 to 20 carbon atoms, such as dodecenylsuccinic acid and octylsuccinic acid. do. These may be used alone or in combination of two or more.

[0188] Furthermore, for the purpose of adjusting the acid value and hydroxyl value, the amorphous polyester resin B may contain at least one of a trivalent or higher carboxylic acid and a trivalent or higher alcohol at the end of the resin chain. Examples of the trivalent or higher carboxylic acid include trimellitic acid, pyromellitic acid, and acid anhydrides thereof. Examples of the trihydric or higher alcohol include glycerin, pentaerythritol, and trimethylolpropane.

[0189] The molecular weight of the amorphous polyester resin B is not particularly limited and can be appropriately selected depending on the purpose. If the molecular weight is too low, the toner may have poor heat-resistant storage stability and poor durability against stress such as stirring in a developing machine. If the molecular weight is too high, the toner may have high viscoelasticity when melted, resulting in poor low-temperature fixability. For this reason, the weight-average molecular weight (Mw) measured by GPC (gel permeation chromatography) is preferably 3,000 to 10,000. The number-average molecular weight (Mn) is preferably 1,000 to 4,000. The Mw / Mn ratio is preferably 1.0 to 4.0.

[0190] The weight average molecular weight (Mw) is more preferably 4,000 to 7,000. The number average molecular weight (Mn) is more preferably 1,500 to 3,000. The Mw / Mn ratio is more preferably 1.0 to 3.5.

[0191] The acid value of the amorphous polyester resin B is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 1 mgKOH / g to 50 mgKOH / g, and more preferably 5 mgKOH / g to 30 mgKOH / g. When the acid value is 1 mgKOH / g or more, the toner tends to be negatively charged, and further, when fixed to paper, the affinity between the paper and the toner is improved, thereby improving low-temperature fixability. When the acid value exceeds 50 mgKOH / g, charging stability, particularly charging stability against environmental changes, may decrease.

[0192] The hydroxyl value of the amorphous polyester resin B is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 5 mgKOH / g or more.

[0193] The glass transition temperature (Tg) of the amorphous polyester resin B is preferably 40° C. or higher and 80° C. or lower, more preferably 50° C. or higher and 70° C. or lower. When the glass transition temperature is 40° C. or higher, the toner has sufficient heat-resistant storage stability and durability against stress such as stirring in a developing machine, and also has good filming resistance. When the glass transition temperature is 80° C. or lower, the toner is sufficiently resistant to deformation due to heat and pressure during fixing, and has good low-temperature fixability.

[0194] The molecular structure of the amorphous polyester resin B can be confirmed by NMR measurement using a solution or a solid, as well as by X-ray diffraction, GC / MS, LC / MS, IR measurement, etc. -1 and 990±10cm -1 One method is to detect amorphous polyester resins that do not have absorption due to olefin δCH (out-of-plane bending vibration).

[0195] The content of the amorphous polyester resin B is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 50 to 90 parts by mass, more preferably 60 to 80 parts by mass, relative to 100 parts by mass of the toner. If the content is less than 50 parts by mass, the dispersibility of the pigment and release agent in the toner may deteriorate, making the image more susceptible to fogging and distortion. If the content exceeds 90 parts by mass, the contents of the crystalline polyester resin C and amorphous polyester resin A may be reduced, resulting in poor low-temperature fixability. If the content is within the above more preferred range, it is advantageous in that both high image quality and low-temperature fixability are excellent.

[0196] To further improve low-temperature fixability, it is preferable to use the amorphous polyester resin A and the crystalline polyester resin C in combination. To achieve both low-temperature fixability and high-temperature, high-humidity storage stability, the amorphous polyester resin A preferably has an extremely low glass transition temperature. Because the glass transition temperature is extremely low, the resin has the property of deforming at low temperatures, deforming under heat and pressure during fixation, and has the property of easily adhering to recording media such as paper at lower temperatures. Furthermore, in one embodiment of the amorphous polyester resin A, the reactive precursor is nonlinear, so that the resin has a branched structure in the molecular skeleton and the molecular chain forms a three-dimensional network structure. This results in rubber-like properties of deforming at low temperatures but not flowing. This enables the toner to maintain its heat-resistant storage stability and high-temperature offset resistance.

[0197] When the amorphous polyester resin A has a urethane bond or urea bond with high cohesive energy, the resin has better adhesion to recording media such as paper. Furthermore, the urethane bond or urea bond behaves like a pseudo-crosslinking point, and therefore the rubber-like properties are stronger, resulting in better heat-resistant storage stability and high-temperature offset resistance of the toner.

[0198] That is, in the toner of the present invention, when the amorphous polyester resin A and the crystalline polyester resin C are used in combination, and if necessary, another amorphous polyester resin B, the toner exhibits extremely excellent low-temperature fixability. Furthermore, by using the amorphous polyester resin A having a glass transition temperature in the ultra-low temperature range, it becomes possible to maintain heat-resistant storage stability and high-temperature offset resistance even when the glass transition temperature of the toner is set lower than conventional toners. Furthermore, by lowering the glass transition temperature of the toner, the toner exhibits excellent low-temperature fixability.

[0199] <<Other ingredients>> Examples of the other components contained in the colored particles include a release agent, a colorant, a charge control agent, a flowability improver, a cleaning property improver, and a magnetic material.

[0200] -Mold release agent- The release agent is not particularly limited and can be appropriately selected from known ones. Examples of wax and wax release agents include natural waxes such as plant waxes such as carnauba wax, cotton wax, and wood wax; animal waxes such as beeswax and lanolin; mineral waxes such as ozokerite and cerusine; and petroleum waxes such as paraffin, microcrystalline, and petrolatum. In addition to these natural waxes, synthetic hydrocarbon waxes such as Fischer-Tropsch wax, polyethylene, and polypropylene; synthetic waxes such as esters, ketones, and ethers; and the like can also be used. Furthermore, fatty acid amide compounds such as 12-hydroxystearic acid amide, stearic acid amide, phthalimide anhydride, and chlorinated hydrocarbons; low-molecular-weight crystalline polymer resins, such as polyacrylate homopolymers or copolymers (e.g., n-stearyl acrylate-ethyl methacrylate copolymers); and crystalline polymers having long alkyl groups in their side chains. Among these, hydrocarbon waxes such as paraffin wax, microcrystalline wax, Fischer-Tropsch wax, polyethylene wax, and polypropylene wax are preferred.

[0201] The melting point of the release agent is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 60° C. or higher and 80° C. or lower. If the melting point is lower than 60° C., the release agent may melt easily at low temperatures, resulting in poor heat-resistant storage stability. If the melting point is higher than 80° C., even if the resin melts and is in the fixing temperature range, the release agent may not melt sufficiently, causing fixing offset and resulting in image defects.

[0202] The content of the release agent is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 2 to 10 parts by mass, more preferably 3 to 8 parts by mass, relative to 100 parts by mass of the toner. If the content is less than 2 parts by mass, the high-temperature offset resistance during fixing and the low-temperature fixability may be poor, while if it exceeds 10 parts by mass, the heat-resistant storage stability may be reduced and image fogging may be more likely to occur. The content within the above more preferred range is advantageous in terms of improving image quality and fixing stability.

[0203] -Coloring agent- The colorant is not particularly limited and can be appropriately selected depending on the purpose. Examples of the colorant include carbon black, nigrosine dye, iron black, naphthol yellow S, Hansa yellow (10G, 5G, G), cadmium yellow, yellow iron oxide, yellow ochre, yellow lead, titanium yellow, polyazo yellow, oil yellow, Hansa yellow (GR, A, RN, R), pigment yellow L, benzidine yellow (G, GR), permanent yellow (NCG), Balkan fast yellow (5G, R), tartrazine lake, quinoline yellow lake, anthrazan yellow BGL, isoindolinone yellow, red iron oxide, red lead, vermilion, Cadmium Red, Cadmium Mercury Red, Antimony Vermilion, Permanent Red 4R, Para Red, Faise Red, Parachlor Orthonitroaniline Red, Lithol Fast Scarlet G, Brilliant Fast Scarlet, Brilliant Carmine BS, Permanent Red (F2R, F4R, FRL, FRLL, F4RH), Fast Scarlet VD, Belcan Fast Rubin B, Brilliant Scarlet G, Lithol Rubin GX, Permanent Red F5R, Brilliant Carmine 6B, Pigment Scarlet Red 3B, Bordeaux 5B, Toluidine Maroon, Permanent Bordeaux F2K, Helio Bordeaux BL, Bordeaux 10B, Bon Maroon Light, Bon Maroon Medium, Eosin Lake, Rhodamine Lake B, Rhodamine Lake Y, Alizarin Lake, Thioindigo Red B, Thioindigo Maroon, Oil Red, Quinacridone Red, Pyrazolone Red, Polyazo Red, Chrome Vermilion, Benzidine Orange, Perinone Orange, Oil Orange, Cobalt Blue, Cerulean Blue, Alkali Blue Lake, Peacock Couleur Lake, Victoria Blue Lake, Metal-free Phthalocyanine Blue, Phthalocyanine Blue, Fast Sky Blue, Indanthrene Blue (RS, BC), Indigo, Ultramarine, Prussian Blue, Anthraquinone Blue, Fast Violet B, Methyl Violet Lake, Cobalt Purple, Manganese Purple, Dioxane Violet, Anthraquinone Violet, Chrome Green, Zinc Green, Chromium Oxide, Pyridian, Emerald Green, Pigment Green B, Naphthol Green B, Green Gold, Acid Green Lake,Examples include malachite green lake, phthalocyanine green, anthraquinone green, titanium oxide, zinc oxide, and lithopone.

[0204] The content of the colorant is not particularly limited and can be appropriately selected depending on the purpose, and is preferably 1 part by mass to 15 parts by mass, more preferably 3 parts by mass to 10 parts by mass, relative to 100 parts by mass of the toner.

[0205] The colorant can also be used as a masterbatch combined with a resin. Examples of resins to be produced by the masterbatch or kneaded together with the masterbatch include, in addition to the amorphous polyester resin, polymers of styrene or its substitution products such as polystyrene, poly-p-chlorostyrene, and polyvinyltoluene; styrene-p-chlorostyrene copolymer, styrene-propylene copolymer, styrene-vinyltoluene copolymer, styrene-vinylnaphthalene copolymer, styrene-methyl acrylate copolymer, styrene-ethyl acrylate copolymer, styrene-butyl acrylate copolymer, styrene-octyl acrylate copolymer, styrene-methyl methacrylate copolymer, styrene-ethyl methacrylate copolymer, styrene-butyl methacrylate copolymer, and styrene-α-chloromethyl methacrylate copolymer. styrene copolymers such as styrene-acrylonitrile copolymers, styrene-vinyl methyl ketone copolymers, styrene-butadiene copolymers, styrene-isoprene copolymers, styrene-acrylonitrile-indene copolymers, styrene-maleic acid copolymers, and styrene-maleic acid ester copolymers; polymethyl methacrylate, polybutyl methacrylate, polyvinyl chloride, polyvinyl acetate, polyethylene, polypropylene, polyester, epoxy resins, epoxy polyol resins, polyurethanes, polyamides, polyvinyl butyral, polyacrylic acid resins, rosin, modified rosin, terpene resins, aliphatic or alicyclic hydrocarbon resins, aromatic petroleum resins, chlorinated paraffins, and paraffin waxes. These may be used alone or in combination of two or more.

[0206] The masterbatch can be obtained by mixing and kneading a masterbatch resin and a colorant under high shear force. In this process, an organic solvent can be used to enhance the interaction between the colorant and the resin. A method known as the flushing method, in which an aqueous paste containing the colorant in water is mixed and kneaded with the resin and organic solvent, the colorant is transferred to the resin, and the water and organic solvent components are removed, is also preferably used because the wet cake of the colorant can be used as is, eliminating the need for drying. A high-shear dispersing device such as a three-roll mill is preferably used for mixing and kneading.

[0207] -Charge control agent- The charge control agent is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include nigrosine dyes, triphenylmethane dyes, chromium-containing metal complex dyes, molybdic acid chelate pigments, rhodamine dyes, alkoxyamines, quaternary ammonium salts (including fluorine-modified quaternary ammonium salts), alkylamides, phosphorus simple substance or compounds, tungsten simple substance or compounds, fluorine-based activators, salicylic acid metal salts, and salicylic acid derivative metal salts.

[0208] Specific examples include the nigrosine dye Bontron 03, the quaternary ammonium salt Bontron P-51, the metal-containing azo dye Bontron S-34, the oxynaphthoic acid metal complex E-82, the salicylic acid metal complex E-84, and the phenolic condensate E-89 (all manufactured by Orient Chemical Industry Co., Ltd.), the quaternary ammonium salt molybdenum complexes TP-302 and TP-415 (both manufactured by Hodogaya Chemical Co., Ltd.), LRA-901, the boron complex LR-147 (manufactured by Nippon Carlit Co., Ltd.), copper phthalocyanine, perylene, quinacridone, azo pigments, and other polymeric compounds having functional groups such as sulfonic acid groups, carboxyl groups, and quaternary ammonium salts.

[0209] The content of the charge control agent is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 0.1 to 10 parts by mass, more preferably 0.2 to 5 parts by mass, relative to 100 parts by mass of the toner. If the content exceeds 10 parts by mass, the toner becomes too chargeable, reducing the effect of the main charge control agent and increasing the electrostatic attraction force with the developing roller, which may result in a decrease in the fluidity of the developer and a decrease in image density.

[0210] These charge control agents can be melt-kneaded together with the master batch and resin and then dissolved and dispersed, or they can be added when directly dissolved and dispersed in an organic solvent, or they can be fixed on the toner surface after toner particles are produced.

[0211] -Flow improver- The flowability improver is not particularly limited, and can be appropriately selected according to the purpose, as long as it can be surface-treated to increase hydrophobicity and prevent deterioration of flowability and charging properties even under high humidity.For example, silane coupling agents, silylating agents, silane coupling agents having fluorinated alkyl groups, organic titanate coupling agents, aluminum coupling agents, silicone oils, modified silicone oils, etc. can be mentioned.It is particularly preferable that the silica and titanium oxide are surface-treated with such flowability improvers and used as hydrophobic silica and hydrophobic titanium oxide.

[0212] -Cleaning improver- The cleaning property improver is not particularly limited as long as it is added to the toner to remove the developer remaining on the photoreceptor or primary transfer medium after transfer, and can be appropriately selected depending on the purpose. Examples include fatty acid metal salts such as zinc stearate, calcium stearate, and stearic acid, and polymer fine particles produced by soap-free emulsion polymerization, such as polymethyl methacrylate fine particles and polystyrene fine particles. The polymer fine particles preferably have a relatively narrow particle size distribution, and are preferably those with a volume average particle size of 0.01 μm to 1 μm.

[0213] -Magnetic materials- The magnetic material is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include iron powder, magnetite, ferrite, etc. Among these, white materials are preferred in terms of color tone.

[0214] <<External additives>> -Silicon oxide- The silicon oxide preferably contains silica fine particles of 50 nm or more and less than 200 nm. If the silica is less than 50 nm, it may not function as a spacer, may have poor durability, and may be easily embedded in the toner matrix, which may cause deterioration in quality over time. If it is 200 nm or more, it may cause deterioration in fluidity and charging properties.

[0215] -Other fine particles- The other fine particles that can be contained in the external additive are not particularly limited as long as they are fine particles other than the alumina fine particles and silica fine particles, and can be appropriately selected depending on the purpose, but hydrophobized inorganic fine particles are preferred. Examples of the other shapes of the fine particles include spherical, acicular, and non-spherical shapes obtained by coalescence of several spherical particles.

[0216] The other fine particles are not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include silica fine particles, hydrophobic silica, fatty acid metal salts (e.g., zinc stearate, aluminum stearate, etc.), metal oxides (e.g., titania, alumina, tin oxide, antimony oxide, etc.), and fluoropolymers.

[0217] Hydrophobized silica fine particles, hydrophobized titania fine particles, and hydrophobized alumina fine particles can be obtained, for example, by treating hydrophilic fine particles with a silane coupling agent such as methyltrimethoxysilane, methyltriethoxysilane, octyltrimethoxysilane, etc. Silicone oil-treated oxide fine particles, which are treated with silicone oil and heated if necessary to form inorganic fine particles, are also suitable. Examples of the silicone oil include dimethyl silicone oil, methylphenyl silicone oil, chlorophenyl silicone oil, methylhydrogen silicone oil, alkyl-modified silicone oil, fluorine-modified silicone oil, polyether-modified silicone oil, alcohol-modified silicone oil, amino-modified silicone oil, epoxy-modified silicone oil, epoxy-polyether-modified silicone oil, phenol-modified silicone oil, carboxyl-modified silicone oil, mercapto-modified silicone oil, methacrylic-modified silicone oil, and α-methylstyrene-modified silicone oil. Examples of the inorganic fine particles include silica, alumina, titanium oxide, barium titanate, magnesium titanate, calcium titanate, strontium titanate, iron oxide, copper oxide, zinc oxide, tin oxide, silica sand, clay, mica, wollastonite, diatomaceous earth, chromium oxide, cerium oxide, red iron oxide, antimony trioxide, magnesium oxide, zirconium oxide, barium sulfate, barium carbonate, calcium carbonate, silicon carbide, silicon nitride, etc. Among these, silica and titanium dioxide are particularly preferred.

[0218] The content of the other fine particles is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 0.1% by mass to 5% by mass, and more preferably 0.3% by mass to 3% by mass.

[0219] <Toner manufacturing method> The method for producing the toner is not particularly limited and can be appropriately selected depending on the purpose, but it is preferable that the method includes a mixing step of mixing the colored particles with the external additive. The colored particles preferably contain the amorphous polyester resin A, the amorphous polyester resin B, and the crystalline polyester resin C, and are granulated by dispersing an oil phase containing the release agent, the colorant, and the like, as needed, in an aqueous medium. In addition, the colored particles are preferably granulated by dispersing an oil phase containing the non-linear reactive precursor, the amorphous polyester resin B, and the crystalline polyester resin C, and further containing the curing agent, the release agent, the colorant, etc., in an aqueous medium, as required.

[0220] One example of a method for producing such colored particles is a known solution suspension method. As an example of a method for producing the colored particles, a method for forming toner base particles while elongating amorphous polyester resin A through an elongation reaction and / or crosslinking reaction between the prepolymer and the curing agent is described below. In this method, an aqueous medium is prepared, an oil phase containing toner materials is prepared, the toner materials are emulsified or dispersed, and the organic solvent is removed. The resulting colored particles are then mixed with the external additive to obtain the toner.

[0221] <<Preparation of aqueous medium (aqueous phase)>> The aqueous medium can be prepared by dispersing the organic fine particles in the aqueous medium. The amount of the organic fine particles added to the aqueous medium is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 0.5 parts by mass to 10 parts by mass per 100 parts by mass of the aqueous medium.

[0222] The aqueous medium is not particularly limited and can be appropriately selected depending on the purpose. Examples include water, a solvent miscible with water, and a mixture thereof. These may be used alone or in combination of two or more. Among these, water is preferred.

[0223] The water-miscible solvent is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include alcohol, dimethylformamide, tetrahydrofuran, cellosolves, lower ketones, etc. The alcohol is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include methanol, isopropanol, ethylene glycol, etc. The lower ketone is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include acetone, methyl ethyl ketone, etc.

[0224] <<Preparation of oil phase>> The oil phase containing the toner materials can be prepared by dissolving or dispersing the toner materials, which include at least the non-linear reactive precursor, the amorphous polyester resin B, and the crystalline polyester resin C, and further include the curing agent, the release agent, the colorant, and the like, as necessary, in an organic solvent.

[0225] The organic solvent is not particularly limited and can be appropriately selected depending on the purpose, but an organic solvent having a boiling point of less than 150° C. is preferred in terms of ease of removal. The organic solvent having a boiling point of less than 150° C. is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include toluene, xylene, benzene, carbon tetrachloride, methylene chloride, 1,2-dichloroethane, 1,1,2-trichloroethane, trichloroethylene, chloroform, monochlorobenzene, dichloroethylidene, methyl acetate, ethyl acetate, methyl ethyl ketone, methyl isobutyl ketone, etc. These may be used alone or in combination of two or more. Among these, ethyl acetate, toluene, xylene, benzene, methylene chloride, 1,2-dichloroethane, chloroform, carbon tetrachloride, etc. are preferred, and ethyl acetate is more preferred.

[0226] <<Emulsification or dispersion>> The toner materials can be emulsified or dispersed by dispersing an oil phase containing the toner materials in the aqueous medium. When the toner materials are emulsified or dispersed, the curing agent and the non-linear reactive precursor undergo an elongation reaction and / or a crosslinking reaction to produce the amorphous polyester resin A.

[0227] The amorphous polyester resin A can be produced, for example, by the following methods (1) to (3). (1) A method of producing the amorphous polyester resin A by emulsifying or dispersing an oil phase containing the non-linear reactive precursor and the curing agent in an aqueous medium, and causing an elongation reaction and / or a crosslinking reaction between the curing agent and the non-linear reactive precursor in the aqueous medium. (2) A method in which an oil phase containing the non-linear reactive precursor is emulsified or dispersed in an aqueous medium to which the curing agent has been added in advance, and the curing agent and the non-linear reactive precursor are subjected to an elongation reaction and / or a crosslinking reaction in the aqueous medium to produce the amorphous polyester resin A. (3) A method in which an oil phase containing the non-linear reactive precursor is emulsified or dispersed in an aqueous medium, and then the curing agent is added to the aqueous medium, and an elongation reaction and / or crosslinking reaction occurs between the curing agent and the non-linear reactive precursor at the particle interface in the aqueous medium, thereby producing the amorphous polyester resin A.

[0228] In addition, when the curing agent and the non-linear reactive precursor are subjected to an elongation reaction and / or a crosslinking reaction from the particle interface, the amorphous polyester resin A is preferentially formed on the surface of the toner produced, and a concentration gradient of the amorphous polyester resin A can be provided in the toner.

[0229] The reaction conditions (reaction time, reaction temperature) for producing the amorphous polyester resin A are not particularly limited and can be appropriately selected depending on the combination of the curing agent and the non-linear reactive precursor. The reaction time is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 10 minutes to 40 hours, more preferably 2 hours to 24 hours. The reaction temperature is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 0°C to 150°C, more preferably 40°C to 98°C.

[0230] The method for stably forming a dispersion containing the non-linear reactive precursor in the aqueous medium is not particularly limited and can be appropriately selected depending on the purpose. For example, there is a method in which an oil phase prepared by dissolving or dispersing toner materials in a solvent is added to an aqueous medium phase, and the mixture is dispersed by shear force.

[0231] The dispersing machine for the dispersion is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include a low-speed shear dispersing machine, a high-speed shear dispersing machine, a friction dispersing machine, a high-pressure jet dispersing machine, and an ultrasonic dispersing machine. Among these, a high-speed shear type disperser is preferred because it can control the particle size of the dispersion (oil droplets) to 2 μm to 20 μm. When the high-speed shear disperser is used, conditions such as the rotation speed, dispersing time, and dispersing temperature can be appropriately selected depending on the purpose. The rotation speed is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 1,000 rpm to 30,000 rpm, and more preferably 5,000 rpm to 20,000 rpm. The dispersion time is not particularly limited and can be appropriately selected depending on the purpose, but in the case of a batch method, it is preferably 0.1 to 5 minutes. The dispersion temperature is not particularly limited and can be appropriately selected depending on the purpose, but is preferably 0° C. to 150° C. under pressure, and more preferably 40° C. to 98° C. Generally, the higher the dispersion temperature, the easier the dispersion.

[0232] The amount of aqueous medium used when emulsifying or dispersing the toner materials is not particularly limited and can be appropriately selected depending on the purpose. It is preferably 50 to 2,000 parts by weight, more preferably 100 to 1,000 parts by weight, per 100 parts by weight of the toner materials. If the amount of aqueous medium used is less than 50 parts by weight, the dispersion state of the toner materials may be poor, making it impossible to obtain colored particles with the specified particle size. If the amount of aqueous medium used is more than 2,000 parts by weight, production costs may increase.

[0233] When the oil phase containing the toner materials is emulsified or dispersed, it is preferable to use a dispersant from the viewpoint of stabilizing the dispersion of oil droplets and the like, forming a desired shape, and sharpening the particle size distribution. The dispersant is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include surfactants, poorly water-soluble inorganic compound dispersants, and polymeric protective colloids. These may be used alone or in combination of two or more. Among these, surfactants are preferred.

[0234] The surfactant is not particularly limited and can be appropriately selected depending on the purpose. For example, anionic surfactants, cationic surfactants, nonionic surfactants, amphoteric surfactants, etc. can be used. The anionic surfactant is not particularly limited and can be appropriately selected depending on the purpose, and examples thereof include alkylbenzene sulfonates, α-olefin sulfonates, phosphate esters, etc. Among these, those having a fluoroalkyl group are preferred.

[0235] In the elongation reaction and / or crosslinking reaction when producing the amorphous polyester resin A, a catalyst can be used. The catalyst is not particularly limited and can be appropriately selected depending on the purpose. Examples thereof include dibutyltin laurate and dioctyltin laurate.

[0236] <<Removal of organic solvents>> The method for removing the organic solvent from the dispersion liquid such as the emulsified slurry is not particularly limited and can be appropriately selected depending on the purpose. For example, a method of gradually increasing the temperature of the entire reaction system to evaporate the organic solvent in the oil droplets, a method of spraying the dispersion liquid into a dry atmosphere to remove the organic solvent in the oil droplets, etc. can be mentioned. When the organic solvent is removed, toner base particles are formed. The toner base particles can be washed, dried, and further classified. The classification can be performed by removing fine particles in a liquid using a cyclone, decanter, centrifugal separation, or the like, or the classification operation can be performed after drying.

[0237] <<Mixing process>> The obtained colored particles are mixed with the external additive. A general powder mixer is used to mix the additives, but it is preferable to equip it with a jacket or the like so that the internal temperature can be adjusted. The load history applied to the additives can be changed by adding the additives during or gradually. In this case, the rotation speed, rolling speed, time, temperature, etc. of the mixer can be changed. A strong load can be applied first, followed by a relatively weak load, or vice versa. Examples of usable mixing equipment include a V-type mixer, rocking mixer, Loedige mixer, Nauta mixer, and Henschel mixer. The mixture is then passed through a sieve of 250 mesh or larger to remove coarse particles and aggregates, yielding a toner.

[0238] <Developer> The developer used in the present invention is preferably a two-component developer containing a toner and a carrier. When the toner is used for a two-component developer, it is mixed with a carrier powder before use. In this case, known carriers can be used, such as iron powder, ferrite powder, magnetite powder, nickel powder, glass beads, and those whose surfaces are coated with resin, etc., and the particle size is preferably a volume average particle size of 25 to 200 μm.

[0239] (container) The container used in the present invention contains a toner or a developer containing a toner and a carrier. The container is not particularly limited and can be appropriately selected from known containers, and a suitable example is one having a toner container body and a cap.

[0240] The container body is not particularly limited in size, shape, structure, material, etc., and can be appropriately selected depending on the purpose. For example, the shape is preferably cylindrical, and it is particularly preferred that the inner circumferential surface is formed with spiral irregularities so that the toner content can be transferred to the outlet side by rotation, and that part or all of the spiral part has a bellows function.

[0241] The material of the container body is not particularly limited, but is preferably one with good dimensional accuracy, such as a resin, of which polyester resin, polyethylene resin, polypropylene resin, polystyrene resin, polyvinyl chloride resin, polyacrylic acid, polycarbonate resin, ABS resin, polyacetal resin, etc. are preferred.

[0242] The container used in the present invention is easy to store, transport, etc., has excellent handleability, and can be suitably used for replenishing toner or developer by being detachably attached to the process cartridge of the present invention described below, the image forming apparatus described above, etc.

[0243] (Process cartridge) The process cartridge according to the present invention is characterized in that it integrally supports a developing device that holds the above-mentioned developer and one or more devices selected from an image carrier, a charging device, and a cleaning device, and is detachably mountable to the main body of an image forming apparatus. Here, the process cartridge may integrally support conventionally known devices such as a static eliminator in addition to the above-mentioned devices. [Example]

[0244] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples. In the following, parts means parts by mass, and % means % by mass. Furthermore, Examples 1 to 6 refer to Reference Examples 1 to 6 that are not included in the present invention.

[0245] (Synthesis of ketimine 1) A reaction vessel equipped with a stirrer and a thermometer was charged with 170 parts of isophoronediamine and 75 parts of methyl ethyl ketone, and the mixture was reacted at 50°C for 5 hours to obtain [Ketimine 1]. [Ketimine 1] had an amine value of 418 mg KOH / g.

[0246] (Synthesis of amorphous polyester prepolymer A) A reaction vessel equipped with a condenser, stirrer, and nitrogen inlet tube was charged with 3-methyl-1,5-pentanediol, adipic acid, and trimellitic anhydride. The molar ratio of hydroxyl groups to carboxyl groups was 1.5, the trimellitic anhydride content in all monomers was 1 mol%, and 1000 ppm of titanium tetraisopropoxide was added relative to all monomers. The mixture was then heated to 200°C over approximately 4 hours, then further heated to 230°C over 2 hours, and reacted until no more water was released. The mixture was then reacted under reduced pressure of 10-15 mmHg for 5 hours to obtain [amorphous polyester A-1] having hydroxyl groups. A hydroxyl-containing amorphous polyester A-1 and isophorone diisocyanate were placed in a reaction vessel equipped with a condenser, a stirrer, and a nitrogen inlet tube. The molar ratio of isocyanate groups to hydroxyl groups was 2.0. The mixture was then diluted with ethyl acetate and reacted at 100°C for 5 hours to obtain a 50% ethyl acetate solution of amorphous polyester prepolymer A-1. A 50% ethyl acetate solution of amorphous polyester prepolymer A-1 was placed in a reaction vessel equipped with a heater, a stirrer, and a nitrogen inlet tube and stirred. Then, ketimine 1 was added dropwise. The molar ratio of amino groups to isocyanate groups was 1. The mixture was then stirred at 45°C for 10 hours, and then dried under reduced pressure at 50°C until the remaining amount of ethyl acetate was 100 ppm or less, yielding amorphous polyester A-1. Amorphous polyester A-1 had a glass transition temperature of -55°C and a weight-average molecular weight of 130,000.

[0247] (Synthesis of amorphous polyester B) A reaction vessel equipped with a nitrogen inlet tube, dehydration tube, stirrer, and thermocouple was charged with 2-mol ethylene oxide adduct of bisphenol A (BisA-EO), 3-mol propylene oxide adduct of bisphenol A (BisA-PO), terephthalic acid, and adipic acid. The molar ratio of BisA-EO to BisA-PO was 40 / 60, the molar ratio of terephthalic acid to adipic acid was 93 / 7, and the molar ratio of hydroxyl groups to carboxyl groups was 1.2. 500 ppm of titanium tetraisopropoxide was added relative to the total monomers. The mixture was then reacted at 230°C for 8 hours, followed by 4 hours under reduced pressure of 10-15 mmHg. 1 mol% of trimellitic anhydride relative to the total monomers was then added, followed by 3 hours of reaction at 180°C to obtain [Amorphous Polyester B]. [Amorphous polyester B] had a glass transition temperature of 67°C and a weight average molecular weight of 10,000.

[0248] (Synthesis of crystalline polyester C) Sebacic acid and 1,6-hexanediol were charged into a reaction vessel equipped with a nitrogen inlet tube, dehydration tube, stirrer, and thermocouple. The molar ratio of hydroxyl groups to carboxyl groups was 0.9, and 500 ppm of titanium tetraisopropoxide was added relative to the total monomer content. The mixture was then reacted at 180°C for 10 hours, then heated to 200°C and reacted for 3 hours. The mixture was then reacted for another 2 hours under a reduced pressure of 8.3 kPa to obtain [Crystalline Polyester C-1]. [Crystalline Polyester C-1] had a melting point of 67°C and a weight-average molecular weight of 25,000.

[0249] <Melting point and glass transition temperature> The melting point and glass transition temperature were measured using a differential scanning calorimeter Q-200 (TA Instruments). Specifically, approximately 5.0 mg of the target sample was placed in an aluminum sample container, which was then placed on a holder unit and set in an electric furnace. Next, the sample was heated from -80°C to 150°C at a heating rate of 10°C / min under a nitrogen atmosphere. The glass transition temperature of the target sample was determined from the obtained DSC curve using the analysis program in the differential scanning calorimeter. The melting point of the target sample was also determined from the obtained DSC curve using the analysis program in the differential scanning calorimeter.

[0250] <Weight average molecular weight> The weight-average molecular weight was measured using a GPC analyzer HLC-8220GPC (Tosoh Corporation) and a 15 cm triple-column TSKgel SuperHZM-H (Tosoh Corporation). Specifically, the column was stabilized in a heat chamber at 40°C. Next, tetrahydrofuran (THF) was passed through the column at a flow rate of 1 mL / min, and 50 to 200 μL of a 0.05 to 0.6 mass% THF solution of the sample was injected to measure the weight-average molecular weight of the sample. The number-average molecular weight of the sample was calculated from the relationship between the logarithm of the calibration curve and the count number, which was prepared using several monodisperse polystyrene standard samples. The standard polystyrene sample has a weight average molecular weight of 6 × 10 2 , 2.1×10 3 , 4×10 3 , 1.75×104 , 5.1×10 4 , 1.1×10 5 , 3.9 × 10 5 , 8.6×10 5 , 2 × 10 6 , 4.48×10 6 The samples used were manufactured by Pressure Chemical Co. or Tosoh Corporation. An RI (refractive index) detector was used as the detector.

[0251] Example 1 <Preparation of Masterbatch 1> Using a Henschel mixer (manufactured by Nippon Coke and Engineering Co., Ltd.), 1200 parts of water, 500 parts of carbon black Printex 35 (manufactured by Dexa) with a DBP oil absorption of 42 mL / 100 mg and a pH of 9.5, and 500 parts of [amorphous polyester B] were mixed, and then kneaded using a two-roll mill at 150°C for 30 minutes. Next, the mixture was rolled and cooled, and then pulverized using a pulverizer to obtain [masterbatch 1].

[0252] <Synthesis of wax dispersant 1> An autoclave reactor equipped with a thermometer and stirrer was charged with 480 parts xylene and 100 parts Sanwax 151P (manufactured by Sanyo Chemical Industries, Ltd.), a polyethylene with a melting point of 108°C and a weight-average molecular weight of 1,000. The polyethylene was dissolved and the atmosphere was purged with nitrogen. Next, a mixture of 805 parts styrene, 50 parts acrylonitrile, 45 parts butyl acrylate, 36 parts di-t-butyl peroxide, and 100 parts xylene was added dropwise over 3 hours, while polymerization was carried out at 170°C and the temperature was maintained for 30 minutes. The solvent was then removed to obtain [Wax Dispersant 1]. [Wax Dispersant 1] had a glass transition temperature of 65°C and a weight-average molecular weight of 18,000.

[0253] <Preparation of Wax Dispersion 1> A container equipped with a stirring rod and a thermometer was charged with 300 parts of paraffin wax HNP-9 (manufactured by Nippon Seiro Co., Ltd.) having a melting point of 75 ° C, 150 parts of [wax dispersant 1], and 1800 parts of ethyl acetate. Next, the mixture was heated to 80 ° C while stirring, maintained for 5 hours, and then cooled to 30 ° C in 1 hour. Furthermore, using a bead mill, Ultraviscomill (manufactured by Aimex Co., Ltd.), 80% by volume of zirconia beads having a diameter of 0.5 mm were filled and dispersed under three-pass conditions to obtain [wax dispersion 1]. At this time, the liquid feed rate was 1 kg / h, and the peripheral speed of the disk was 6 m / s.

[0254] <Preparation of Crystalline Polyester Dispersion 1> A container equipped with a stirring rod and a thermometer was charged with 308 parts of [Crystalline Polyester C-1] and 1,900 parts of ethyl acetate. The mixture was then heated to 80°C with stirring, maintained for 5 hours, and then cooled to 30°C over 1 hour. Furthermore, a bead mill, Ultraviscomill (manufactured by Imex Co., Ltd.), was used to fill the mixture with 80% by volume of zirconia beads with a diameter of 0.5 mm, and the mixture was dispersed under three passes to obtain [Crystalline Polyester Dispersion 1]. The liquid feed rate was 1 kg / h, and the peripheral speed of the disk was 6 m / s.

[0255] <Preparation of oil phase 1> 225 parts of [Wax Dispersion 1], 40 parts of [50% ethyl acetate solution of amorphous polyester prepolymer A], 390 parts of [Amorphous Polyester B], 225 parts of [Crystalline Polyester Dispersion 1], 60 parts of [Masterbatch 1], and 285 parts of ethyl acetate were charged into a container, and then mixed at 7000 rpm for 60 minutes using a TK Homomixer (manufactured by Primix Corporation) to obtain [Oil Phase 1].

[0256] <Synthesis of vinyl resin dispersion> A reaction vessel equipped with a stirrer and thermometer was charged with 683 parts of water, 11 parts of Eleminol RS-30 (Sanyo Chemical Industries, Ltd.), a sodium salt of the sulfate ester of an ethylene oxide adduct of methacrylic acid, 138 parts of styrene, 138 parts of methacrylic acid, and 1 part of ammonium persulfate. The mixture was stirred at 400 rpm for 15 minutes to produce a white emulsion. The temperature inside the system was then raised to 75°C and the mixture was allowed to react for 5 hours. Then, 30 parts of a 1% aqueous ammonium persulfate solution was added, and the mixture was aged at 75°C for 5 hours to produce a vinyl resin dispersion. The vinyl resin dispersion had a volume average particle size of 0.14 μm. The volume average particle size of the vinyl resin dispersion was measured using a laser diffraction / scattering particle size distribution measuring device LA-920 (manufactured by HORIBA Corporation).

[0257] <Preparation of aqueous phase 1> 990 parts of water, 83 parts of a vinyl resin dispersion as organic fine particles, 37 parts of a 48.5% aqueous solution of sodium dodecyldiphenyletherdisulfonate (Eleminol MON-7, manufactured by Sanyo Chemical Industries, Ltd.), and 90 parts of ethyl acetate were mixed and stirred to obtain a milky white [Aqueous Phase 1].

[0258] <Emulsification / solvent removal> To a vessel containing [Oil Phase 1], 0.2 parts of [Ketimine 1] and 1200 parts of [Aqueous Phase 1] were added, and then mixed at 13000 rpm for 20 minutes using a TK Homomixer to obtain [Emulsified Slurry 1]. [Emulsified Slurry 1] was placed in a vessel equipped with a stirrer and thermometer, and the solvent was removed at 30°C for 8 hours, followed by aging at 45°C for 4 hours to obtain [Dispersed Slurry 1].

[0259] <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed for 10 minutes at 12,000 rpm using a TK homomixer, heated at 50°C for 4 hours, and then filtered. The filter cake was dried for 48 hours at 45°C using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 1].

[0260] <External additive mixing process> 100 parts of [colored particles 1] and 2 parts of silica (AEROSIL NX90G; manufactured by Nippon Aerosil Co., Ltd.) were placed in a 20 L Henschel mixer (manufactured by Mitsui Mining Co., Ltd.), mixed at a peripheral speed of 40 m / s for 20 minutes, and passed through a 500 mesh sieve to obtain [toner 1].

[0261] <Carrier manufacturing> The following composition was dispersed in a homomixer for 10 minutes to obtain a silicone resin coating film-forming solution. Using sintered ferrite powder with a volume average particle size of 70 μm as the core material, the above coating film-forming solution was applied to the core material surface at a coater temperature of 40°C using a Spira Coater (manufactured by Okada Seiko Co., Ltd.) to a film thickness of 0.15 μm, and then dried. The obtained carrier was fired in an electric furnace at 300°C for 1 hour. After cooling, the ferrite powder bulk was crushed using a sieve with 125 μm openings to produce a carrier.

[0262] Silicone resin solution: 132.2 parts [Solid content 23%, SR2410, manufactured by Dow Corning Toray Silicones] 0.66 parts aminosilane [100% solids, SH6020, manufactured by Dow Corning Toray Silicones] Conductive particles 1...31 parts [Substrate: alumina, surface treatment: lower layer tin dioxide / upper layer indium oxide containing tin dioxide, particle size: 0.35 μm, particle powder resistivity: 3.5 Ω·cm] 300 parts toluene

[0263] <Preparation of Developer> 8% by mass of the prepared [Toner 1] was mixed with 92% by mass of the above carrier to prepare two-component developers.

[0264] <Image forming device> Using the image forming apparatus shown in Figure 1, images were formed by toner image forming unit 1K. In this image forming apparatus, the speed difference between the photosensitive member and the transfer / transport belt was set to 0.2%, and images with an image area ratio of 5% and images with an image area ratio of 20% were output alternately every 1,000 sheets under the following conditions: 23°C and 50% RH for 0 to 10,000 sheets, 28°C and 85% RH for 10,000 to 20,000 sheets, and 15°C and 30% RH for 20,000 to 30,000 sheets. This actual machine image formation was carried out in three sets up to 90,000 sheets.

[0265] <Evaluation> <<Transferability: Hollow>> After completing the image formation on 90,000 sheets, the occurrence of voids in the images was checked and evaluated according to the following criteria.

[0266] [Evaluation criteria] ◎: No "hollow" parts were found by visual inspection ○: The "void" can be barely detected by visual observation, and the "void" does not impair image quality. △: Hollow areas can be relatively easily detected by visual inspection ×: Anyone can easily find the "hollow" part (see Figure 3).

[0267] <<Photoconductor cleaning>> After completing the image formation on 90,000 sheets, a vertical band pattern (relative to the paper running direction) of 43 mm wide and three charts was printed on 100 sheets of A4 size landscape paper in a laboratory environment of 32°C and 54% RH as evaluation images. The images obtained were visually observed, and the cleaning performance was evaluated based on the presence or absence of image abnormalities due to poor cleaning.

[0268] [Evaluation criteria] ◎: Visual observation shows that toner that has slipped through due to poor cleaning is not visible on the printed paper or on the photosensitive drum, and no streaks of toner can be seen when observing the photosensitive drum longitudinally with a microscope. ○: Visual inspection shows that toner that has slipped through due to poor cleaning cannot be seen on the printed paper or on the photoconductor. △: Visual observation shows that toner that has slipped through due to poor cleaning cannot be seen on the printed paper, but can be seen on the photoconductor. ×: Visual observation shows that toner that has slipped through due to poor cleaning can be seen on both the printed paper and the photosensitive drum.

[0269] <<Transfer Filming>> After completing the image formation on the 90,000 sheets, the transfer body was observed and the occurrence of abnormal images in solid images was confirmed, and the results were evaluated according to the following criteria: Transfer filming refers to a state in which toner and external additives adhere to the transfer body due to pressure from the cleaning blade, making development impossible.

[0270] [Evaluation criteria] ◎: Excellent ○: No sticking of the transfer body occurred △: Although slight adhesion occurs on the transfer body, no white spots are detected in the solid image. ×: Sticking occurs on the transfer body and white spots occur in the solid image

[0271] <<Overall Judgment>> The evaluation criteria for the overall judgment are as follows: "◎" is extremely good, "〇" is good, "△" is at an acceptable level, and "×" is at a level that is not acceptable for practical use. "◎", "〇", and "△" are considered to be pass, and "×" is considered to be fail.

[0272] [Evaluation criteria] ◎: Two or more 『◎』 and no 『△』 or 『×』 ○: Only one 『◎』 can be used, but no 『△』 or 『×』 can be used. △: One or more 『△』 and no 『×』 ×: One or more "×"

[0273] Example 2 In the image forming apparatus of Example 1, evaluation was carried out in the same manner as in Example 1, except that the speed difference between the photosensitive member and the transfer / transport belt was changed to 0.4%.

[0274] Example 3 In the image forming apparatus of Example 1, evaluation was carried out in the same manner as in Example 1, except that the speed difference between the photosensitive member and the transfer / transport belt was changed to 0.8%.

[0275] Example 4 Colored particles 2 and toner 2 were obtained and evaluated in the same manner as in Example 1, except that the washing, heating, and drying steps were carried out as follows. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 53°C for 4 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 2].

[0276] Example 5 Colored particles 3 and toner 3 were obtained and evaluated in the same manner as in Example 1, except that the washing, heating, and drying steps were carried out as follows. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 55°C for 4 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 3].

[0277] Example 6 In the image forming apparatus in Example 1, the speed difference between the photosensitive member and the transfer / transport belt was changed to 0.4%, and evaluation was carried out using [Toner 2].

[0278] Example 7 Colored particles 4 and toner 4 were obtained and evaluated in the same manner as in Example 1, except that the organic fine particles were changed from the vinyl resin dispersion to the organic fine particle resin dispersion shown below. <Synthesis of aqueous dispersion of organic fine particles> A reaction vessel equipped with a stirrer, heating / cooling device, and thermometer was charged with 3760 parts by weight of water and 150 parts by weight of polyoxyethylene-1-(allyloxymethyl) alkyl ether sulfate ester ammonium (Aqualon KH-1025, manufactured by Daiichi Kogyo Seiyaku Co., Ltd.), and the mixture was stirred at 200 rpm to homogenize. After heating to 75°C, 90 parts by weight of a 10 wt% aqueous ammonium persulfate solution was added, followed by the dropwise addition of a mixture of 430 parts by weight of styrene, 270 parts by weight of butyl acrylate, and 300 parts by weight of methacrylic acid over a period of 4 hours. After the dropwise addition, the mixture was aged at 75°C for 4 hours to obtain a microparticle dispersion containing resin (a2-1), a polymer copolymerized with the monomer and polyoxyethylene-1-(allyloxymethyl) alkyl ether sulfate ester ammonium. The volume average particle size of the microparticles in the microparticle dispersion was 30 nm.

[0279] <Distance between organic particles> (1) By using ultrasonic waves to release external additives, the external additives are removed as much as possible, and the material is brought to a state close to the base material. (Method for releasing external additives) [1] Add 50 ml of a 5% aqueous solution containing a surfactant (product name: Noigen ET-165, manufactured by Daiichi Kogyo Seiyaku Co., Ltd.) to a 100 ml screw tube, add 3 g of toner to the mixture, and gently move it up and down and left and right. Then, mix it in a ball mill for 30 minutes to allow the toner to blend into the dispersion solution. [2] Then, using an ultrasonic homogenizer (trade name homogenizer, model VCX750, CV33, manufactured by SONICS & MATERIALS LLC), set the output to 40 W and apply ultrasonic energy for 60 minutes.

[0280] Ultrasonic conditions Vibration time: 60 minutes continuous Amplitude: 40W Vibration start temperature: 23±1.5℃ Temperature during vibration: 23±1.5℃

[0281] [3] The dispersion is suction filtered using filter paper (trade name: Qualitative Filter Paper (No. 2, 110 mm), manufactured by Advantec Toyo Co., Ltd.), washed twice with ion-exchanged water, filtered again, and the free additives are removed. After that, the toner particles are dried.

[0282] (2) The toner obtained in (1) is observed using a scanning electron microscope (SEM). First, external additives and fillers containing Si are detected by observing the backscattered electron image.

[0283] (3) The image of (1) is binarized using image processing software (ImageJ) to remove the external additives and fillers. Next, observe the secondary electron image at the same position as in (1). Since organic fine particles (OMS) cannot be observed in the backscattered electron image, but can only be observed in the secondary electron image, compare it with the image obtained in (3), and determine that the fine particles present in the areas other than the remaining external additives and filler (areas other than those excluded in (3)) are organic fine particles, and measure the interparticle distance (the distance between the centers of the particles) using the image processing software mentioned above.

[0284] The standard deviation of the distance between organic fine particles is calculated by the following formula (1), where x is the distance between particles.

[0285]

number

[0286] [Photography conditions] Scanning electron microscope: SU-8230 Magnification: 35,000x Image capture: SE (L): Secondary electrons, BSE (backscattered electrons) Accelerating voltage: 2.0 kV Accelerating current: 1.0μA Probe current: Normal Focus mode: UHR WD: 8.0 mm

[0287] Example 8 In the image forming apparatus of Example 1, the speed difference between the photosensitive member and the transfer conveyor belt was changed to 0.4%, the organic fine particles were changed from a vinyl resin dispersion to an organic fine particle resin dispersion, and the <cleaning, heating treatment, and drying> process was carried out as follows. Except for this, [colored particles 5] and [toner 5] were obtained and evaluated in the same manner as in Example 1. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 53°C for 4 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [Colored Particles 5].

[0288] Example 9 [Colored particles 6] and [toner 6] were obtained and evaluated in the same manner as in Example 1, except that the organic fine particles in Example 1 were changed from a vinyl resin dispersion to an organic fine particle resin dispersion, and the <cleaning, heating treatment, and drying> steps were carried out as follows. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 55°C for 4 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 6].

[0289] Example 10 In the image forming apparatus of Example 8, the speed difference between the photosensitive member and the transfer / transport belt was changed to 0.1%, and evaluation was carried out using [Toner 5].

[0290] Example 11 In the image forming apparatus of Example 1, the speed difference between the photosensitive member and the transfer / conveyor belt was changed to 0.4%, the organic fine particles were changed from a vinyl resin dispersion to an organic fine particle resin dispersion, and the <cleaning, heating treatment, and drying> process was carried out as follows. Except for this, [colored particles 7] and [toner 7] were obtained and evaluated in the same manner as in Example 1. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 50°C for 8 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 7].

[0291] (Comparative Example 1) In the image forming apparatus of Example 1, evaluation was carried out in the same manner as in Example 1, except that the speed difference between the photosensitive member and the transfer / transport belt was changed to 0%.

[0292] (Comparative Example 2) In the image forming apparatus of Example 1, evaluation was carried out in the same manner as in Example 1, except that the speed difference between the photosensitive member and the transfer / transport belt was changed to 0.9%.

[0293] (Comparative Example 3) In the image forming apparatus of Example 1, the speed difference between the photosensitive member and the transfer / conveyor belt was changed to 0.4%, and the <cleaning, heating treatment, and drying> process was carried out as follows. Except for this, [colored particles 8] and [toner 8] were obtained and evaluated in the same manner as in Example 1. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 48°C for 4 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 8].

[0294] Comparative Example 4 In the image forming apparatus of Example 1, the speed difference between the photosensitive member and the transfer / conveyor belt was changed to 0.4%, and the <cleaning, heating treatment, and drying> process was carried out as follows. Except for this, [Colored particles 9] and [Toner 9] were obtained and evaluated in the same manner as in Example 1. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 58°C for 4 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 9].

[0295] (Comparative Example 5) In the image forming apparatus of Example 1, the speed difference between the photosensitive member and the transfer / conveyor belt was changed to 0.4%, and the <cleaning, heating treatment, and drying> process was carried out as follows. Except for this, [colored particles 10] and [toner 10] were obtained and evaluated in the same manner as in Example 1. <Cleaning, heating, drying> 100 parts of [Dispersion Slurry 1] was filtered under reduced pressure. Next, 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (1)). Furthermore, 100 parts of a 10% aqueous sodium hydroxide solution was added to the filter cake, and the mixture was mixed at 12,000 rpm for 30 minutes using a TK homomixer, followed by filtration under reduced pressure (hereinafter referred to as washing step (2)). Next, 100 parts of 10% hydrochloric acid was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (3)). Furthermore, 300 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, followed by filtration (hereinafter referred to as washing step (4)). At this time, the washing steps (1) to (4) were repeated twice. 100 parts of ion-exchanged water was added to the filter cake, and the mixture was mixed at 12,000 rpm for 10 minutes using a TK homomixer, heated at 48°C for 6 hours, and then filtered. The filter cake was dried at 45°C for 48 hours using a circulating air dryer, and then sieved through a mesh with 75 μm openings to obtain [colored particles 10].

[0296] The toner evaluation results and image evaluation results are shown in Tables 1 to 3.

[0297] [Table 1]

[0298] [Table 2]

[0299] [Table 3] [Explanation of symbols]

[0300] 1Y, 1M, 1C, 1K toner image forming unit 2 Optical writing unit 3, 4 Paper cassettes 5 Registration roller pair 6 Transfer transport unit belt 7 Fixing unit 8 Paper output tray 11Y, 11M, 11C, 11K photoconductor drum 60 Transfer conveyor belt 100 transfer paper [Prior art documents] [Patent documents]

[0301] [Patent Document 1] Japanese Patent Application Laid-Open No. 2003-029489 [Patent Document 2] Japanese Patent Application Laid-Open No. 2007-148078

Claims

1. an image carrier; a developing means for developing the latent image formed on the image carrier into a toner image; a transfer member having a contact portion that contacts the image carrier, and onto which the toner image is primarily transferred from the image carrier; a speed difference between the image carrier and the transfer body at the contact portion, expressed as follows, is 0.1% or more and 0.8% or less, the toner for forming the toner image contains a polyester resin, has an average circularity of 0.971 or more and 0.986 or less, and has a shape factor SF-2 of 110 or more and 119 or less; The toner has a toner matrix and a plurality of organic fine particles embedded in the surface of the toner matrix, the organic fine particles are a copolymer of styrene, methacrylic acid, and a sodium salt of a sulfate ester of an ethylene oxide adduct of methacrylic acid, or a copolymer of styrene, butyl acrylate, methacrylic acid, and ammonium polyoxyethylene-1-(allyloxymethyl) alkyl ether sulfate, and have a volume average particle size of 30 nm or more and 140 nm or less; An image forming apparatus characterized in that the standard deviation of the interparticle distance between adjacent organic fine particles that are not in contact with each other, that is, the standard deviation of the straight-line distance connecting the center of one organic fine particle to the center of another organic fine particle, is 300 nm or less. [Speed difference] The speed difference at the contact point is calculated from the set value of the linear speed of the image carrier and the set value of the linear speed of the transfer body, and when the linear speed of the image carrier is V1 and the linear speed of the transfer body is V2, the speed difference is expressed as follows: Speed difference [%] = {(V1-V2) / V2}×100

2. 2. The image forming apparatus according to claim 1, wherein the speed difference between the image carrier and the transfer body at the contact portion is 0.2% or more and 0.5% or less.

3. 3. The image forming apparatus according to claim 1, wherein the toner has an average circularity of 0.974 or more and 0.984 or less.

4. 4. The image forming apparatus according to claim 1, wherein the toner has a shape factor SF-2 of 112 or more and 117 or less.

5. a developing step of developing the latent image formed on the image carrier into a toner image; a transfer step of primarily transferring the toner image from the image carrier to a transfer body having a contact portion that contacts the image carrier, a speed difference between the image carrier and the transfer body at the contact portion, expressed as follows, is 0.1% or more and 0.8% or less, the toner for forming the toner image contains a polyester resin, has an average circularity of 0.971 or more and 0.986 or less, and has a shape factor SF-2 of 110 or more and 119 or less; The toner has a toner matrix and a plurality of organic fine particles embedded in the surface of the toner matrix, the organic fine particles are a copolymer of styrene, methacrylic acid, and a sodium salt of a sulfate ester of an ethylene oxide adduct of methacrylic acid, or a copolymer of styrene, butyl acrylate, methacrylic acid, and ammonium polyoxyethylene-1-(allyloxymethyl) alkyl ether sulfate, and have a volume average particle size of 30 nm or more and 140 nm or less; An image forming method characterized in that the standard deviation of the interparticle distances of adjacent organic fine particles that are not in contact with each other, that is, the standard deviation of the straight-line distance connecting the center of one organic fine particle to the center of another organic fine particle, is 300 nm or less. [Speed difference] The speed difference at the contact point is calculated from the set value of the linear speed of the image carrier and the set value of the linear speed of the transfer body, and when the linear speed of the image carrier is V1 and the linear speed of the transfer body is V2, the speed difference is expressed as follows: Speed difference [%] = {(V1-V2) / V2}×100

Citation Information

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