Electrostatic image developing carrier, electrostatic image developer, process cartridge, image forming apparatus and image forming method

The carrier stabilizes charge and toner separation with specific particle properties and fluororesin coating, addressing density unevenness in high-load printing by maintaining image quality.

JP7743741B2Active Publication Date: 2025-09-25FUJIFILM BUSINESS INNOVATION CORP
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2021156194
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-24
Publication Date
2025-09-25
Estimated Expiration
2041-09-24

AI Technical Summary

Technical Problem

Existing electrostatic image developing carriers experience density unevenness under high-load printing conditions due to inappropriate amounts or properties of particles on their surface, leading to unstable charge states and image quality issues.

Method used

The carrier is designed with specific ranges for the amount, residual ratio, water content, and properties of inorganic oxide particles on its surface, along with a fluororesin coating, to stabilize charge and prevent density unevenness during high-speed printing.

Benefits of technology

The carrier produces images with reduced density unevenness even under high-load conditions by stabilizing charge and toner separation, maintaining image quality through controlled particle presence and moisture content.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007743741000005
    Figure 0007743741000005
  • Figure 0007743741000006
    Figure 0007743741000006
  • Figure 0007743741000001
    Figure 0007743741000001
Patent Text Reader

Abstract

To provide a carrier for electrostatic charge image development with which an image with less density unevenness is obtained even in a high-load print condition.SOLUTION: A carrier for electrostatic charge image development has particles A on its surface in an amount of 0.02 mass% or more and 0.5 mass% or less based on the total mass of the carrier. A survival rate X of the particles A on the carrier when images with a halftone at 30% are printed on 5,000 sheets of A4 paper on their entire surfaces on condition of 120 sheets / min, is 0.3 or more and 1.0 or less in terms of fluorescent X-ray NET intensity. The water content of the particles A is 7 mass% or more and 12 mass% or less based on the total mass of the particles A.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to an electrostatic image developing carrier, an electrostatic image developer, a process cartridge, an image forming apparatus, and an image forming method. [Background technology]

[0002] Patent Document 1 describes a magnetic particle containing a magnetic core particle and a coating layer that coats the core particle, and has a shape factor SF-2 of 115 to 150 and a bulk density of 1.8 g / cm. 3 ~2.4g / cm 3 The carrier for developing electrostatic latent images is characterized in that the core particles have a shape factor SF-2 of 120 to 160, an arithmetic mean surface roughness Ra of 0.5 μm to 1.0 μm, and the coating layer contains a resin and a filler in a ratio of 50 to 500 parts by mass of the filler per 100 parts by mass of the resin. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-057817 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of the present invention is to provide an electrostatic image developing carrier that can produce images with less density unevenness even under high-load printing conditions, compared to a carrier having particles A on its surface in an amount of less than 0.02% by mass or more than 0.5% by mass, relative to the total mass of the carrier, or in which the residual rate X of particles A in the carrier after printing 5,000 full-page A4 paper images with 30% halftone at 120 pages per minute is less than 0.3 or more than 1.0, as measured by a fluorescent X-ray net intensity, or in which the water content of particles A is less than 7% by mass or more than 12% by mass, relative to the total mass of particles A. [Means for solving the problem]

[0005] Means for solving the above problems include the following aspects. <1> A carrier for developing electrostatic images, the carrier having particles A on its surface in an amount of 0.02% by mass or more and 0.5% by mass or less, based on the total mass of the carrier, wherein a residual ratio X of the particles A in the carrier after printing 5,000 full-page A4 paper images with 30% halftone at 120 pages per minute is 0.3 or more and 1.0 or less, as measured by a fluorescent X-ray net intensity, and the water content of the particles A is 7% by mass or more and 12% by mass or less, based on the total mass of the particles A. <2> The particles A are inorganic oxide particles. <1> 10. The carrier for developing electrostatic images according to claim 19. <3> The inorganic oxide particles are silica particles. <2> 10. The carrier for developing electrostatic images according to claim 19. <4> The arithmetic mean particle size of the particles A is 60 nm or more and 160 nm or less. <1> ~ <3> 10. The electrostatic image developing carrier according to claim 9, wherein the carrier is a fluororesin. <5> The volume resistance of the particles A is 10 12 Ω or more 10 15 is less than or equal to Ω <1> ~ <4> 10. The electrostatic image developing carrier according to claim 9, wherein the carrier is a fluororesin. <6> The SF1 of the carrier is 110 or more and 125 or less. <1> ~ <5> 10. The electrostatic image developing carrier according to claim 9, wherein the carrier is a fluororesin. <7> The SF1 of the carrier is 126 or more and 140 or less. <1> ~ <5> 10. The electrostatic image developing carrier according to claim 9, wherein the carrier is a fluororesin. <8> The standard deviation in the particle size distribution of the particles A is 8 or more and 12 or less. <1> ~ <7> 10. The electrostatic image developing carrier according to claim 9, wherein the carrier is a fluororesin. <9> The true specific gravity of the particle A is 1.1 g / cm 3 More than 2.0g / cm 3 is <1> ~ <8> 10. The electrostatic image developing carrier according to claim 9, wherein the carrier is a fluororesin. <10> The carrier has magnetic particles and a resin coating layer that coats the magnetic particles. <1> ~ <9> 10. The electrostatic image developer according to claim 9, wherein the electrostatic image developer is a developer containing a fluorine atom or a methyl acrylate. <11> The weight average molecular weight of the resin contained in the resin coating layer is less than 300,000. <10> Electrostatic image developer according to claim 1. <12> The weight average molecular weight of the resin contained in the resin coating layer is less than 250,000. <11> 10. The carrier for developing electrostatic images according to claim 19. <13> a toner for developing an electrostatic image; <1> ~ <12> and the carrier for developing electrostatic images according to any one of the above. <14> <13> and a developing means for developing an electrostatic image formed on the surface of an image carrier using the electrostatic image developer into a toner image, the process cartridge being detachably mountable to an image forming apparatus. <15> an image carrier; a charging means for charging the surface of the image carrier; and an electrostatic image forming means for forming an electrostatic image on the charged surface of the image carrier; <13> and developing means for developing an electrostatic image formed on the surface of the image carrier as a toner image using the electrostatic image developer; transferring means for transferring the toner image formed on the surface of the image carrier to a surface of a recording medium; and fixing means for fixing the toner image transferred to the surface of the recording medium. <16> a charging step of charging the surface of an image carrier; and an electrostatic image forming step of forming an electrostatic image on the charged surface of the image carrier. <13> a developing step of developing an electrostatic image formed on the surface of the image carrier as a toner image using the electrostatic image developer described in claim 1; a transferring step of transferring the toner image formed on the surface of the image carrier to the surface of a recording medium; and a fixing step of fixing the toner image transferred to the surface of the recording medium. [Effects of the Invention]

[0006] <1> , <2> , <6> , <7> or <10> According to the invention related to (1), an electrostatic image developing carrier is provided that can produce images with less density unevenness even under high-load printing conditions, compared to a carrier having particles A on the carrier surface in an amount of less than 0.02% by mass or more than 0.5% by mass relative to the total mass of the carrier, or having a residual rate X of particles A in the carrier after printing 5,000 full-page A4 paper images with 30% halftone at 120 pages per minute, as measured in terms of a fluorescent X-ray net intensity, of less than 0.3 or more than 1.0, or having a moisture content of particles A of less than 7% by mass or more than 12% by mass relative to the total mass of particles A. <3> According to the invention related to (1), there is provided a carrier for developing electrostatic images that can produce images with less density unevenness even under high-load printing conditions, compared to when the inorganic oxide particles are titania particles. <4> According to the present invention, there is provided a carrier for developing electrostatic images that can produce images with less density unevenness even under high-load printing conditions, compared to when the average particle size of the particles A is less than 60 nm or more than 160 nm. <5> According to the present invention, the volume resistivity of the particles A is 10 12 Less than Ω or 10 15 Compared with a carrier having a resistance exceeding Ω, an electrostatic image developing carrier is provided that can provide an image with less density unevenness even under high-load printing conditions. <8> According to the present invention, there is provided a carrier for developing electrostatic images that can produce images with less density unevenness even under high-load printing conditions, compared to when the standard deviation in the particle size distribution of the particles A is less than 8 or more than 12. <9> According to the invention, the true specific gravity of the particles A is 1.1 g / cm 3 Less than or 2.0 g / cm 3 Thus, an electrostatic image developing carrier is provided that can provide images with less density unevenness even under high-load printing conditions, compared to when the carrier is greater than 100%. <11> According to the present invention, there is provided a carrier for developing electrostatic images that can produce images with less density unevenness even under high-load printing conditions, compared to when the weight-average molecular weight of the resin contained in the resin coating layer is 300,000 or more. <12> According to the present invention, there is provided a carrier for developing electrostatic images that can produce images with less density unevenness even under high-load printing conditions, compared to when the weight-average molecular weight of the resin contained in the resin coating layer is 250,000 or more. <13> ~ <16> According to the invention related to (1), an electrostatic image developer, a process cartridge, an image forming apparatus, or an image forming method is provided which can produce images with less density unevenness even under high-stress printing conditions, compared to a case in which particles A are present on the carrier surface in an amount of less than 0.02% by mass or more than 0.5% by mass relative to the total mass of the carrier, or in which the residual rate X of particles A in the carrier after printing 5,000 full-page A4 paper images with 30% halftone at 120 pages per minute is less than 0.3 or more than 1.0 in terms of fluorescent X-ray NET intensity, or in which the water content of particles A is less than 7% by mass or more than 12% by mass relative to the total mass of particles A. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a schematic configuration diagram illustrating an example of an image forming apparatus according to an embodiment of the present invention. [Figure 2] 1 is a schematic diagram illustrating an example of a process cartridge that is detachably mounted to an image forming apparatus according to an exemplary embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0008]

[0023] The following describes embodiments of the present disclosure. These descriptions and examples are intended to illustrate the embodiments and are not intended to limit the scope of the embodiments.

[0009] In the present disclosure, a numerical range indicated using "to" indicates a range that includes the numerical values ​​before and after "to" as the minimum and maximum values, respectively.

[0010] In the numerical ranges described in stages in this disclosure, the upper or lower limit value described in one numerical range may be replaced with the upper or lower limit value of another numerical range described in stages. Furthermore, in the numerical ranges described in this disclosure, the upper or lower limit value of that numerical range may be replaced with a value shown in the examples.

[0011] In the present disclosure, the term "process" includes not only an independent process but also a process that cannot be clearly distinguished from other processes as long as the intended purpose of the process is achieved.

[0012] When embodiments of the present disclosure are described with reference to the drawings, the configuration of the embodiment is not limited to the configuration shown in the drawings. Furthermore, the sizes of the components in each drawing are conceptual, and the relative size relationships between the components are not limited to these.

[0013] In the present disclosure, each component may contain multiple corresponding substances. When referring to the amount of each component in a composition in the present disclosure, if multiple substances corresponding to each component are present in the composition, the total amount of the multiple substances present in the composition is meant unless otherwise specified.

[0014] In the present disclosure, the composition may contain multiple types of particles corresponding to each component. When multiple types of particles corresponding to each component are present in the composition, the particle size of each component means the value for a mixture of the multiple types of particles present in the composition, unless otherwise specified.

[0015] In the present disclosure, "(meth)acrylic" means at least one of acrylic and methacrylic, and "(meth)acrylate" means at least one of acrylate and methacrylate.

[0016] In this disclosure, "toner for developing electrostatic images" is also referred to as "toner," "carrier for developing electrostatic images" is also referred to as "carrier," and "electrostatic image developer" is also referred to as "developer."

[0017] (Electrostatic image developing carrier) The carrier for electrostatic image development according to this embodiment (hereinafter also simply referred to as "carrier") has particles A on its surface in an amount of 0.02% by mass or more and 0.5% by mass or less, based on the total mass of the carrier, and after printing 5,000 full-page A4 paper images with 30% halftone at 120 sheets per minute, the residual ratio X of particles A in the carrier is 0.3 to 1.0, as measured by the fluorescent X-ray net intensity, and the water content of the particles A is 7% by mass or more and 12% by mass or less, based on the total mass of the particles A.

[0018] In this embodiment, carbon black is not an inorganic particle.

[0019] The carrier according to this embodiment can obtain images with little density unevenness even under high-load printing conditions (also simply referred to as "density unevenness suppression"). The mechanism behind this is presumed to be as follows.

[0020] As printing continues, the carrier state changes from the initial development state, which is likely to manifest as changes in image density and density unevenness. To date, carriers coated with silicone resins or crosslinked resins have been proposed as a method for suppressing these changes. However, these have low charge-imparting capabilities and low affinity with toner, which makes toner density uneven on the magnetic brush. Another proposed method is to attach low-resistivity particles to the carrier, thereby creating a deteriorated state in the early stages and thereby reducing the extent of charge change. However, the present inventors have found that this method is prone to fluctuations in the transfer of charge between the carrier and toner, resulting in an unstable charge state, which can lead to image density unevenness under high-load conditions such as high-speed printing. Furthermore, if the toner remains in the developing means for a long time, charge exchange between the toner and the carrier continues, which presumably changes the external additive state of the toner, resulting in a change in the charge. When the carrier for developing electrostatic images according to this embodiment is used, the presence of particles A on the carrier surface in the above-mentioned amount range is unlikely to impede charging, suppressing charge injection, and therefore presumably stabilizing the charge of the toner. Furthermore, particles A stabilize the separation of the toner from the carrier, suppressing image density unevenness. Furthermore, when printing is continued, the above-mentioned range ensures that the same effect is maintained even under high-load printing conditions (for example, printing 5,000 A4 full-page images with 30% halftone at 120 sheets / minute). Furthermore, when particles A have the above moisture content, excess charge is transferred to the carrier side, suppressing mutual charge transfer between new toner and toner subjected to high load when new toner is supplied, and therefore presumably suppressing image density unevenness even under high-load printing conditions.

[0021] The configuration of the carrier according to this embodiment will be described in detail below.

[0022] <Particle A> The carrier for developing electrostatic images according to this embodiment has particles A on its surface in an amount of 0.02% by mass or more and 0.5% by mass or less, based on the total mass of the carrier. After printing 5,000 full-page A4 size images at 30% halftone at 120 pages per minute, the remaining ratio X of the particles A in the carrier is 0.3 to 1.0, as measured by a fluorescent X-ray net intensity. The water content of the particles A is 7% by mass or more and 12% by mass or less, based on the total mass of the particles A.

[0023] Examples of particles A include particles of silica, alumina, titanium oxide (titania), barium titanate, magnesium titanate, calcium titanate, strontium titanate, iron oxide, copper oxide, zinc oxide, tin oxide, chromium oxide, cerium oxide, antimony trioxide, magnesium oxide, zirconium oxide, barium sulfate, barium carbonate, and calcium carbonate. Among these, from the viewpoint of suppressing unevenness in image density after high-load printing, particles A are preferably inorganic particles, more preferably inorganic oxide particles, still more preferably silica particles, titanium oxide particles, or silica-titanium oxide composite particles, and particularly preferably silica particles. The silica particles are preferably wet silica particles formed by a wet method such as a precipitation method or a sol-gel method.

[0024] The particles A may be particles that have been subjected to a hydrophobic treatment. Furthermore, the particles A preferably contain inorganic oxide particles that have been hydrophobized with a hydrophobizing agent, and more preferably contain silica particles that have been hydrophobized.

[0025] Examples of the hydrophobic treatment agent include known surface treatment agents, and specific examples include silane coupling agents and silicone oils. Examples of silane coupling agents include hexamethyldisilazane, trimethylsilane, trimethylchlorosilane, dimethyldichlorosilane, methyltrichlorosilane, allyldimethylchlorosilane, benzyldimethylchlorosilane, methyltrimethoxysilane, methyltriethoxysilane, isobutyltrimethoxysilane, dimethyldimethoxysilane, dimethyldiethoxysilane, trimethylmethoxysilane, hydroxypropyltrimethoxysilane, phenyltrimethoxysilane, n-butyltrimethoxysilane, n-hexadecyltrimethoxysilane, n-octadecyltrimethoxysilane, vinyltrimethoxysilane, vinyltriethoxysilane, γ-methacryloxypropyltrimethoxysilane, and vinyltriacetoxysilane. Examples of silicone oils include dimethylpolysiloxane, methylhydrogenpolysiloxane, and methylphenylpolysiloxane.

[0026] -Amount of particle A on the carrier surface- Particles A are externally added to the surface of the carrier for developing electrostatic images in this embodiment, and it is assumed that most of the particles A are present in a state of being attached to or embedded in the carrier surface, and some particles A may also be present in a state where they can be released. The carrier for developing electrostatic images according to this embodiment has particles A on its surface in an amount of 0.02% by mass or more and 0.5% by mass or less, relative to the total mass of the carrier. From the viewpoint of suppressing uneven image density after high-load printing, the amount is preferably 0.03% by mass or more and 0.2% by mass or less, more preferably 0.03% by mass or more and 0.15% by mass or less, and particularly preferably 0.03% by mass or more and 0.1% by mass or less.

[0027] The amount of particles A on the carrier surface is measured by the following method. A calibration curve for Si is created using the NET intensity of fluorescent X-rays, and the content is calculated from the measured Si-NET intensity of the carrier.

[0028] -Residual rate of particle A X- In the carrier for developing electrostatic images according to this embodiment, the residual ratio X of particles A in the carrier after printing 5,000 full-page A4 paper images with 30% halftone at 120 sheets per minute is, in terms of NET fluorescent X-ray intensity, 0.3 or more and 1.0 or less, and from the viewpoint of suppressing unevenness in image density after high-load printing, is preferably 0.4 or more and 1.0 or less, more preferably 0.5 or more and 1.0 or less, and particularly preferably 0.7 or more and 1.0 or less.

[0029] The residual rate X of particles A is measured by the following method. Before printing, or after printing up to 100 sheets of any image, the developer is passed through a 16μm mesh to remove the toner, and carrier A is extracted. Removal methods include using a 16μm mesh cage and blowing with air. Similarly, after printing 5,000 full-page A4 paper images with 30% halftone at 120 pages per minute, the toner is removed from the developer and carrier B is extracted. The fluorescent X-ray net intensity of both is measured, and the residual ratio X is calculated from the net strength α of carrier A and the net strength β of carrier B, using the formula: X = β / α. It is also preferable to use toner 1 in the examples described below.

[0030] -Moisture content of particle A- In the carrier for developing electrostatic images according to this embodiment, the water content of the particles A is from 7% by mass to 12% by mass, both inclusive, relative to the total mass of the particles A. From the viewpoint of suppressing uneven image density after high-load printing, it is preferably from 9% by mass to 11% by mass.

[0031] The method for measuring the moisture content of particles A in this embodiment is as follows. After leaving it for 48 hours under conditions of 28°C and 85% RH, the moisture content of particle A is determined by the weight difference before and after heating at 150°C for 20 minutes using a heated Mettler.

[0032] -Volume resistance value of particle A- The volume resistance value of the particles A is set to 10 12 Ω or more 10 15 Ω or less is preferable, and 5×10 12 Ω or more 5×10 14 Ω or less is more preferable, and 10 13 Ω or more 10 14 It is particularly preferable that it is Ω or less.

[0033] The method for measuring the volume resistivity of particles A in this embodiment is as follows. The volume resistivity of particles A is measured by the following method, where the measurement environment is a temperature of 20°C and a humidity of 50% RH. Two electrodes are placed parallel to each other with a width of 1 mm, and 0.20 g of ferrite particles are placed between them. The cross-sectional area is 2.4 cm. 2 The sample is held in place by a magnet, a voltage of 1,000 V is applied, and the current value is measured. The resistance value is calculated from the obtained current value.

[0034] -Arithmetic mean particle size of particle A- From the viewpoint of suppressing uneven image density after high-load printing, the arithmetic mean particle size of the particles A is preferably 10 nm or more and 200 nm or less, more preferably 60 nm or more and 160 nm or less, and particularly preferably 90 nm or more and 140 nm or less.

[0035] -Standard deviation of particle size distribution of particle A- The standard deviation in the particle size distribution of the particles A is preferably 5 or more and 20 or less, and more preferably 8 or more and 12 or less, from the viewpoint of suppressing unevenness in image density after high-load printing.

[0036] In this embodiment, the arithmetic mean particle size of particles A is the diameter of a circle having the same area as the particle image (so-called circle-equivalent diameter), and is determined by taking an electron microscope image of the carrier and analyzing the image of at least 300 particles A on the carrier. The particles A are then imported into an image processing analyzer and subjected to image analysis. 300 particles A (primary particles) are randomly selected from the resin coating layer, and their circle-equivalent diameters (nm) are calculated and the arithmetic mean is taken, which is the average particle size (nm) of particles A. Further, the standard deviation is calculated from the particle size distribution of particles A obtained by the above measurement.

[0037] -True specific gravity of particle A- The true specific gravity of the particles A is 1.1 g / cm from the viewpoint of suppressing unevenness in image density after high-load printing. 3 More than 2.0g / cm 3 It is preferable that the concentration is 1.3 g / cm or less. 3 More than 1.9g / cm 3 More preferably, it is 1.5 g / cm or less. 3 More than 1.9g / cm 3 It is particularly preferred that:

[0038] In this embodiment, the true specific gravity of the particle A is measured using an automatic powder / granular true specific gravity measuring instrument (product name "Auto True Denser MAT-7000") based on the pycnometer method manufactured by Seishin Enterprise Co., Ltd.

[0039] -Method of adding particle A externally- The method for externally adding the particles A to the carrier surface is not particularly limited, and any known external addition method can be used, but a preferred example is the method of externally adding the particles A using a V blender. The external addition conditions using a V blender are preferably 20 rpm and 20 minutes.

[0040] <Magnetic particles> From the viewpoint of the residual properties of particles A and the suppression of uneven image density after high-load printing, the carrier for developing electrostatic images according to this embodiment preferably has magnetic particles and a resin coating layer that coats the magnetic particles.

[0041] From the viewpoint of suppressing uneven image density after high-load printing, the volume average particle size of the magnetic particles is preferably 20 μm or more and 50 μm or less, more preferably 25 μm or more and 34 μm or less, even more preferably 26 μm or more and 33 μm or less, and particularly preferably 28 μm or more and 32 μm or less. The volume average particle diameters of the magnetic particles and carrier in this embodiment are values ​​measured using a laser diffraction particle size distribution analyzer LA-700 (manufactured by Horiba, Ltd.) Specifically, the particle size distribution obtained by the analyzer is divided into particle size ranges (channels), and the particle diameter at which the cumulative volume distribution is subtracted from the small particle size side and cumulative 50% is defined as the volume average particle diameter. A suitable method for separating the magnetic particles from the carrier is to dissolve the resin coating layer with an organic solvent and then separate the magnetic particles. More specifically, as a method for separating magnetic particles from carriers, for example, 20 g of resin-coated carriers are placed in 100 mL of toluene. Ultrasonic waves are applied at 40 kHz for 30 seconds. Any filter paper appropriate for the particle size is used to separate the magnetic particles from the resin solution. 20 mL of toluene is poured over the magnetic particles remaining on the filter paper to wash them. Next, the magnetic particles remaining on the filter paper are collected. The collected magnetic particles are similarly placed in 100 mL of toluene and ultrasonic waves are applied at 40 kHz for 30 seconds. The particles are similarly filtered, washed with 20 mL of toluene, and then collected. This process is repeated 10 times in total. Finally, the collected magnetic particles are dried.

[0042] As the material of the magnetic particles, known materials used as the core material of carriers are applied. Specific examples of magnetic particles include particles of magnetic metals such as iron, nickel, and cobalt; particles of magnetic oxides such as ferrite and magnetite; resin-impregnated magnetic particles in which porous magnetic powder is impregnated with resin; and magnetic powder-dispersed resin particles in which magnetic powder is dispersed in resin. In this embodiment, ferrite particles are preferred as the magnetic particles.

[0043] Furthermore, from the viewpoints of chargeability, chargeability in a high-temperature, high-humidity environment, and suppression of concentration changes, the magnetic particles preferably contain strontium, more preferably are ferrite particles containing strontium, and particularly preferably are ferrite particles containing iron, manganese, magnesium, and strontium. When the magnetic particles contain strontium, the dielectric constant increases, the capacity of the carrier improves, and the charge amount increases, allowing for good images to be obtained even in high-temperature, high-humidity environments, while also providing better suppression of density changes.

[0044] From the viewpoint of image quality stability under high temperature and high humidity conditions and suppression of density change, the content of strontium element in the magnetic particles is preferably 0.001% by mass or more and less than 2% by mass, more preferably 0.005% by mass or more and less than 1.5% by mass, and particularly preferably 0.01% by mass or more and less than 1% by mass.

[0045] The content of strontium element contained in the magnetic particles is measured by fluorescent X-ray analysis. Fluorescent X-ray analysis of ferrite particles is performed by the following method. Qualitative and quantitative analysis is performed using an X-ray fluorescence analyzer (Shimadzu Corporation, XRF1500) under the following conditions: X-ray output: 40 V / 70 mA, measurement area: 10 mm diameter, measurement time: 15 minutes. The elements to be analyzed are selected based on the elements detected in the qualitative analysis. The main elements selected are iron (Fe), manganese (Mn), magnesium (Mg), calcium (Ca), strontium (Sr), oxygen (O), and carbon (C). The mass percentage (%) of each element is calculated by referring to separately prepared calibration curve data.

[0046] The arithmetic mean height Ra (JIS B0601:2001) of the roughness curve of the magnetic particles is preferably 0.1 μm or more and 1 μm or less, and more preferably 0.2 μm or more and 0.8 μm or less. The arithmetic mean height Ra of the roughness curve of a magnetic particle is determined by observing the magnetic particles at an appropriate magnification (for example, 1000x magnification) using a surface profile measuring device (for example, Keyence Corporation's "Ultra-Deep Color 3D Profile Measuring Microscope VK-9700"), obtaining a roughness curve with a cutoff value of 0.08 mm, and extracting a reference length of 10 μm from the roughness curve in the direction of the mean line. The Ra of 100 magnetic particles is then arithmetically averaged.

[0047] The magnetic force of the magnetic particles is preferably 50 emu / g or more, more preferably 60 emu / g or more, in terms of saturation magnetization in a magnetic field of 3,000 oersteds. The saturation magnetization is measured using a vibrating sample magnetometer VSMP10-15 (manufactured by Toei Kogyo Co., Ltd.). The measurement sample is placed in a cell with an inner diameter of 7 mm and a height of 5 mm and set in the instrument. The measurement is performed by applying a magnetic field and sweeping up to a maximum of 3,000 oersteds. The applied magnetic field is then reduced, and a hysteresis curve is created on recording paper. The saturation magnetization, remanent magnetization, and coercive force are determined from the curve data.

[0048] The volume electrical resistance (volume resistivity) of magnetic particles is 1×10 5 Ω cm or more 1×10 9Ω·cm or less is preferable, and 1×10 7 Ω cm or more 1×10 9 Ω·cm or less is more preferable. The volume resistivity (Ω·cm) of magnetic particles is measured as follows: 2 The object to be measured is placed flat on the surface of the circular jig on which the electrode plate is arranged, with a thickness of 1 mm to 3 mm, to form a layer. 2 The layer is sandwiched between two electrode plates. To eliminate any gaps between the objects being measured, a 4 kg load is placed on the electrode plates placed on the layer, and then the layer thickness (cm) is measured. The electrodes above and below the layer are connected to an electrometer and a high-voltage power supply generator. A high voltage is applied to both electrodes so that the electric field becomes 103.8 V / cm, and the current value (A) that flows at this time is read. The measurement environment is a temperature of 20°C and a relative humidity of 50%. The formula for calculating the volume electrical resistivity (Ω·cm) of the object being measured is as shown below. R=E×20 / (I-I0) / L In the above formula, R represents the volume electrical resistance (Ω·cm) of the object to be measured, E represents the applied voltage (V), I represents the current value (A), I0 represents the current value (A) at an applied voltage of 0 V, and L represents the layer thickness (cm). The coefficient 20 is the area of ​​the electrode plate (cm 2 )

[0049] <Resin coating layer> From the viewpoints of the residual properties of particles A and the suppression of uneven image density after high-load printing, the carrier for developing electrostatic images according to this embodiment preferably has a resin coating layer that coats the magnetic particles, and more preferably the resin coating layer contains inorganic particles.

[0050] In this embodiment, the average thickness of the resin coating layer is preferably 0.6 μm or more and 1.4 μm or less, more preferably 0.8 μm or more and 1.2 μm or less, and particularly preferably 0.8 μm or more and 1.1 μm or less, from the viewpoint of suppressing uneven image density after high-load printing.

[0051] Examples of inorganic particles contained in the resin coating layer include metal oxide particles such as silica, titanium oxide, zinc oxide, and tin oxide; metal compound particles such as barium sulfate, aluminum borate, and potassium titanate; and metal particles such as gold, silver, and copper. Among these, silica particles are preferred from the viewpoint of suppressing concentration changes.

[0052] From the viewpoint of suppressing uneven image density after high-load printing, the arithmetic mean particle size of the inorganic particles in the resin coating layer is preferably 5 nm or more and 90 nm or less, more preferably 5 nm or more and 70 nm or less, even more preferably 5 nm or more and 50 nm or less, and particularly preferably 8 nm or more and 50 nm or less.

[0053] In this embodiment, the average particle size of the inorganic particles contained in the resin coating layer and the average thickness of the resin coating layer are determined by the following method. The carrier is embedded in epoxy resin and cut with a microtome to prepare a carrier cross section. SEM images of the carrier cross section taken with a scanning electron microscope (SEM) are imported into an image processing analyzer for image analysis. One hundred inorganic particles (primary particles) in the resin coating layer are randomly selected, and their equivalent circle diameters (nm) are determined. The arithmetic mean is calculated, which is the average particle size (nm) of the inorganic particles. Additionally, the thickness (μm) of the resin coating layer is measured at 10 random locations per carrier particle. Further measurements are taken for 100 carriers, and the arithmetic mean of all measurements is calculated, which is the average thickness (μm) of the resin coating layer.

[0054] The surfaces of the inorganic particles may be subjected to a hydrophobic treatment. Examples of the hydrophobic treatment agent include known organosilicon compounds having an alkyl group (e.g., a methyl group, an ethyl group, a propyl group, a butyl group, etc.), and specific examples include alkoxysilane compounds, siloxane compounds, and silazane compounds. Among these, the hydrophobic treatment agent is preferably a silazane compound, and hexamethyldisilazane is preferred. The hydrophobic treatment agent may be used alone or in combination of two or more types.

[0055] Examples of methods for hydrophobizing inorganic particles with a hydrophobizing agent include a method using supercritical carbon dioxide to dissolve the hydrophobizing agent in supercritical carbon dioxide and adhere the hydrophobizing agent to the surfaces of the inorganic particles; a method in which a solution containing the hydrophobizing agent and a solvent that dissolves the hydrophobizing agent is applied (e.g., sprayed or painted) to the surfaces of inorganic particles in the atmosphere to adhere the hydrophobizing agent to the surfaces of the inorganic particles; and a method in which a solution containing the hydrophobizing agent and a solvent that dissolves the hydrophobizing agent is added to an inorganic particle dispersion in the atmosphere, the mixture is maintained, and then the inorganic particle dispersion and the mixed solution are dried.

[0056] From the viewpoint of suppressing uneven image density after high-load printing, the content of inorganic particles contained in the resin coating layer is preferably 10% by mass or more and 60% by mass or less, more preferably 15% by mass or more and 55% by mass or less, and even more preferably 20% by mass or more and 50% by mass or less, relative to the total mass of the resin coating layer. From the viewpoint of suppressing uneven image density after high-load printing, the content of silica particles contained in the resin coating layer is preferably 10% by mass or more and 60% by mass or less, more preferably 15% by mass or more and 55% by mass or less, and even more preferably 20% by mass or more and 50% by mass or less, relative to the total mass of the resin coating layer.

[0057] Resins that can be used to form the resin coating layer include styrene-acrylic acid copolymers; polyolefin resins such as polyethylene and polypropylene; polyvinyl or polyvinylidene resins such as polystyrene, acrylic resin, polyacrylonitrile, polyvinyl acetate, polyvinyl alcohol, polyvinyl butyral, polyvinyl chloride, polyvinyl carbazole, polyvinyl ether, and polyvinyl ketone; vinyl chloride-vinyl acetate copolymers; straight silicone resins or modified silicone resins consisting of organosiloxane bonds; fluororesins such as polytetrafluoroethylene, polyvinyl fluoride, polyvinylidene fluoride, and polychlorotrifluoroethylene; polyesters; polyurethanes; polycarbonates; amino resins such as urea-formaldehyde resins; and epoxy resins. In particular, from the viewpoints of electrostatic chargeability, control of external additive adhesion, and suppression of image density unevenness, it is preferable that the resin constituting the resin coating layer contains an acrylic resin, and it is more preferable that the acrylic resin accounts for 50% by mass or more of the total mass of the resin in the resin coating layer, and it is particularly preferable that the acrylic resin accounts for 80% by mass or more of the total mass of the resin in the resin coating layer.

[0058] From the viewpoint of suppressing uneven image density, the resin coating layer preferably contains an acrylic resin having an alicyclic structure. The polymerization component of the acrylic resin having an alicyclic structure is preferably a lower alkyl ester of (meth)acrylic acid (for example, a (meth)acrylic acid alkyl ester having an alkyl group with 1 to 9 carbon atoms), and specific examples thereof include methyl (meth)acrylate, ethyl (meth)acrylate, propyl (meth)acrylate, butyl (meth)acrylate, hexyl (meth)acrylate, cyclohexyl (meth)acrylate, and 2-ethylhexyl (meth)acrylate. These monomers may be used alone or in combination of two or more. The acrylic resin having an alicyclic structure preferably contains cyclohexyl(meth)acrylate as a polymerization component. The content of the monomer unit derived from cyclohexyl(meth)acrylate contained in the acrylic resin having an alicyclic structure is preferably 75% by mass or more and 100% by mass or less, more preferably 85% by mass or more and 100% by mass or less, and even more preferably 95% by mass or more and 100% by mass or less, based on the total mass of the acrylic resin having an alicyclic structure.

[0059] From the viewpoint of suppressing image density unevenness, the weight average molecular weight of the resin contained in the resin coating layer is preferably less than 300,000, more preferably less than 250,000, even more preferably 5,000 or more but less than 250,000, and particularly preferably 10,000 or more but less than 100,000.

[0060] The resin coating layer may contain conductive particles for the purpose of controlling charging and resistance. Examples of the conductive particles include carbon black and the aforementioned inorganic particles having conductivity.

[0061] Methods for forming a resin coating layer on the surface of magnetic particles include, for example, a wet method and a dry method. The wet method is a method that uses a solvent to dissolve or disperse the resin that constitutes the resin coating layer. On the other hand, the dry method is a method that does not use the solvent.

[0062] Examples of wet manufacturing methods include a dipping method in which magnetic particles are dipped in a resin liquid for forming a resin coating layer to coat them, a spraying method in which the resin liquid for forming a resin coating layer is sprayed onto the surfaces of the magnetic particles, a fluidized bed method in which the resin liquid for forming a resin coating layer is sprayed onto magnetic particles in a fluidized state in a fluidized bed, and a kneader coater method in which magnetic particles and the resin liquid for forming a resin coating layer are mixed in a kneader coater and the solvent is removed. These manufacturing methods may be repeated or combined. The resin liquid for forming the resin coating layer used in the wet manufacturing method is prepared by dissolving or dispersing the resin, inorganic particles, and other components in a solvent. The solvent is not particularly limited, and examples thereof include aromatic hydrocarbons such as toluene and xylene, ketones such as acetone and methyl ethyl ketone, and ethers such as tetrahydrofuran and dioxane.

[0063] An example of a dry manufacturing method is a method in which a mixture of magnetic particles and a resin for forming a resin coating layer is heated in a dry state to form a resin coating layer. Specifically, for example, the magnetic particles and the resin for forming the resin coating layer are mixed in a gas phase and heated to melt, thereby forming a resin coating layer.

[0064] The exposed area ratio of the magnetic particles on the carrier surface is preferably 5% to 30%, more preferably 7% to 25%, and even more preferably 10% to 25%. The exposed area ratio of the magnetic particles on the carrier can be controlled by the amount of resin used to form the resin coating layer, and the greater the amount of resin relative to the amount of magnetic particles, the smaller the exposed area ratio.

[0065] The exposed area ratio of the magnetic particles on the carrier surface is a value determined by the following method. The target carrier and magnetic particles from which the resin coating layer has been removed are prepared. Methods for removing the resin coating layer from the carrier include, for example, dissolving the resin component in an organic solvent to remove the resin coating layer, or heating to about 800°C to eliminate the resin component and remove the resin coating layer. The carrier and magnetic particles are each used as measurement samples, and the Fe concentration (atomic %) on the sample surface is quantified using XPS. The exposed area ratio (%) of the magnetic particles is calculated as (Fe concentration of the carrier) ÷ (Fe concentration of the magnetic particles) × 100.

[0066] From the viewpoint of suppressing concentration changes, the volume average particle size of the carrier is preferably 25 μm or more and 36 μm or less, more preferably 26 μm or more and 35 μm or less, and particularly preferably 28 μm or more and 34 μm or less.

[0067] The shape factor SF1 of the carrier is preferably 110 or more and 140 or less, and from the viewpoint of image stability and durability, it is more preferably 110 or more and 125 or less, and from the viewpoint of charging properties, it is more preferably 126 or more and 140 or less.

[0068] The shape factor SF1 of the carrier in this embodiment is determined by capturing an optical microscope image of the carrier dispersed on the surface of a slide glass via a video camera into a Luzex image analyzer, measuring the maximum length (ML) and projected area (A) of 100 or more carriers, and calculating the ML 2 The average value of / A shall be calculated.

[0069] (Electrostatic image developer) The developer according to this embodiment is a two-component developer containing the electrostatic image developing carrier according to this embodiment and a toner. The toner contains toner particles and, if necessary, an external additive.

[0070] The mixture ratio (mass ratio) of the carrier to the toner in the developer is preferably from 100:1 to 100:30, more preferably from 100:3 to 100:20.

[0071] <Toner particles> The toner particles are composed of, for example, a binder resin, and, if necessary, a colorant, a release agent, and other additives.

[0072] -Binder resin- Examples of binder resins include homopolymers of monomers such as styrenes (e.g., styrene, parachlorostyrene, α-methylstyrene, etc.), (meth)acrylic acid esters (e.g., methyl acrylate, ethyl acrylate, n-propyl acrylate, n-butyl acrylate, lauryl acrylate, 2-ethylhexyl acrylate, methyl methacrylate, ethyl methacrylate, n-propyl methacrylate, lauryl methacrylate, 2-ethylhexyl methacrylate, etc.), ethylenically unsaturated nitriles (e.g., acrylonitrile, methacrylonitrile, etc.), vinyl ethers (e.g., vinyl methyl ether, vinyl isobutyl ether, etc.), vinyl ketones (e.g., vinyl methyl ketone, vinyl ethyl ketone, vinyl isopropenyl ketone, etc.), and olefins (e.g., ethylene, propylene, butadiene, etc.), and vinyl resins made of copolymers of two or more of these monomers. Examples of the binder resin include non-vinyl resins such as epoxy resins, polyester resins, polyurethane resins, polyamide resins, cellulose resins, polyether resins, and modified rosin, mixtures of these with the vinyl resins, and graft polymers obtained by polymerizing vinyl monomers in the presence of these. These binder resins may be used alone or in combination of two or more.

[0073] As the binder resin, a polyester resin is preferable. Examples of polyester resins include known amorphous polyester resins. The polyester resin may be used in combination with a crystalline polyester resin. However, the content of the crystalline polyester resin is preferably in the range of 2% by mass to 40% by mass (preferably 2% by mass to 20% by mass) relative to the total binder resin.

[0074] The "crystalline" nature of a resin refers to the presence of a clear endothermic peak rather than a stepwise change in the amount of heat absorbed in differential scanning calorimetry (DSC). Specifically, this refers to the half-width of the endothermic peak being within 10°C when measured at a heating rate of 10°C / min. On the other hand, the term "amorphous" for a resin means that the half-width exceeds 10°C, that the endothermic amount exhibits a stepwise change, or that no clear endothermic peak is observed.

[0075] Amorphous polyester resin The amorphous polyester resin may be, for example, a condensation polymer of a polycarboxylic acid and a polyhydric alcohol. As the amorphous polyester resin, a commercially available product or a synthesized product may be used.

[0076] Examples of polycarboxylic acids include aliphatic dicarboxylic acids (such as oxalic acid, malonic acid, maleic acid, fumaric acid, citraconic acid, itaconic acid, glutaconic acid, succinic acid, alkenylsuccinic acid, adipic acid, and sebacic acid), alicyclic dicarboxylic acids (such as cyclohexanedicarboxylic acid), aromatic dicarboxylic acids (such as terephthalic acid, isophthalic acid, phthalic acid, and naphthalenedicarboxylic acid), anhydrides thereof, and lower alkyl esters thereof (e.g., having 1 to 5 carbon atoms). Among these, aromatic dicarboxylic acids are preferred as polycarboxylic acids. The polycarboxylic acid may be a trivalent or higher carboxylic acid having a crosslinked or branched structure in combination with a dicarboxylic acid. Examples of the trivalent or higher carboxylic acid include trimellitic acid, pyromellitic acid, anhydrides thereof, and lower alkyl esters thereof (e.g., having 1 to 5 carbon atoms). The polycarboxylic acids may be used alone or in combination of two or more.

[0077] Examples of polyhydric alcohols include aliphatic diols (e.g., ethylene glycol, diethylene glycol, triethylene glycol, propylene glycol, butanediol, hexanediol, neopentyl glycol, etc.), alicyclic diols (e.g., cyclohexanediol, cyclohexanedimethanol, hydrogenated bisphenol A, etc.), and aromatic diols (e.g., ethylene oxide adducts of bisphenol A, propylene oxide adducts of bisphenol A, etc.). Among these, preferred polyhydric alcohols are aromatic diols and alicyclic diols, and more preferred are aromatic diols. As the polyhydric alcohol, a trihydric or higher polyhydric alcohol having a crosslinked or branched structure may be used in combination with the diol. Examples of trihydric or higher polyhydric alcohols include glycerin, trimethylolpropane, and pentaerythritol. The polyhydric alcohols may be used alone or in combination of two or more.

[0078] The glass transition temperature (Tg) of the amorphous polyester resin is preferably 50°C or higher and 80°C or lower, and more preferably 50°C or higher and 65°C or lower. The glass transition temperature is determined from a DSC curve obtained by differential scanning calorimetry (DSC), and more specifically, is determined from the "extrapolated glass transition onset temperature" described in the method for determining glass transition temperature in JIS K7121:1987 "Method for measuring transition temperature of plastics."

[0079] The weight average molecular weight (Mw) of the amorphous polyester resin is preferably 5,000 or more and 1,000,000 or less, and more preferably 7,000 or more and 500,000 or less. The number average molecular weight (Mn) of the amorphous polyester resin is preferably 2,000 or more and 100,000 or less. The molecular weight distribution Mw / Mn of the amorphous polyester resin is preferably 1.5 or more and 100 or less, and more preferably 2 or more and 60 or less. The weight average molecular weight and number average molecular weight are measured by gel permeation chromatography (GPC). Molecular weight measurements by GPC are performed using a Tosoh GPC HLC-8120GPC measuring device, a Tosoh TSKgel SuperHM-M (15 cm) column, and THF solvent. The weight average molecular weight and number average molecular weight are calculated from the measurement results using a molecular weight calibration curve prepared with monodisperse polystyrene standard samples.

[0080] The amorphous polyester resin can be obtained by a known production method, for example, by carrying out the reaction at a polymerization temperature of 180°C or higher and 230°C or lower, reducing the pressure in the reaction system as necessary, and removing water and alcohol generated during the condensation. If the raw material monomers are not soluble or compatible at the reaction temperature, a high-boiling solvent may be added as a solubilizer to dissolve them. In this case, the polycondensation reaction is carried out while distilling off the solubilizer. If a monomer with poor compatibility is present in the copolymerization reaction, it is advisable to first condense the poorly compatible monomer with the acid or alcohol to be polycondensed, and then polycondense it with the main component.

[0081] Crystalline polyester resin Examples of the crystalline polyester resin include a polycondensate of a polycarboxylic acid and a polyhydric alcohol. As the crystalline polyester resin, a commercially available product or a synthesized product may be used. Here, the crystalline polyester resin is preferably a polycondensate using a linear aliphatic polymerizable monomer rather than a polymerizable monomer having an aromatic ring, since it easily forms a crystalline structure.

[0082] Examples of polycarboxylic acids include aliphatic dicarboxylic acids (e.g., 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, 1,18-octadecanedicarboxylic acid, etc.), aromatic dicarboxylic acids (e.g., dibasic acids such as phthalic acid, isophthalic acid, terephthalic acid, and naphthalene-2,6-dicarboxylic acid), anhydrides thereof, and lower alkyl esters thereof (e.g., having 1 to 5 carbon atoms). The polycarboxylic acid may be a tricarboxylic or higher carboxylic acid having a crosslinked or branched structure in combination with a dicarboxylic acid. Examples of the tricarboxylic acid include aromatic carboxylic acids (e.g., 1,2,3-benzenetricarboxylic acid, 1,2,4-benzenetricarboxylic acid, 1,2,4-naphthalenetricarboxylic acid, etc.), anhydrides thereof, and lower alkyl esters thereof (e.g., having 1 to 5 carbon atoms). As the polycarboxylic acid, a dicarboxylic acid having a sulfonic acid group and a dicarboxylic acid having an ethylenic double bond may be used in combination with these dicarboxylic acids. The polycarboxylic acids may be used alone or in combination of two or more.

[0083] Examples of polyhydric alcohols include aliphatic diols (for example, straight-chain aliphatic diols having 7 to 20 carbon atoms in the main chain). Examples of aliphatic diols 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, and 1,14-eicosanedecanediol. Among these, 1,8-octanediol, 1,9-nonanediol, and 1,10-decanediol are preferred as aliphatic diols. The polyhydric alcohol may be a trihydric or higher alcohol having a crosslinked or branched structure, such as glycerin, trimethylolethane, trimethylolpropane, or pentaerythritol, in combination with the diol. The polyhydric alcohols may be used alone or in combination of two or more.

[0084] Here, the polyhydric alcohol has an aliphatic diol content of 80 mol % or more, preferably 90 mol % or more.

[0085] The melting temperature of the crystalline polyester resin is preferably 50°C or higher and 100°C or lower, more preferably 55°C or higher and 90°C or lower, and even more preferably 60°C or higher and 85°C or lower. The melting temperature is determined from a DSC curve obtained by differential scanning calorimetry (DSC) by using the "melting peak temperature" described in the method for determining the melting temperature in JIS K7121:1987 "Method for measuring transition temperatures of plastics."

[0086] The weight average molecular weight (Mw) of the crystalline polyester resin is preferably 6,000 or more and 35,000 or less.

[0087] The crystalline polyester resin can be obtained by a known production method, for example, in the same manner as the amorphous polyester.

[0088] The content of the binder resin is preferably 40% by mass to 95% by mass, more preferably 50% by mass to 90% by mass, and even more preferably 60% by mass to 85% by mass, based on the total mass of the toner particles.

[0089] -Coloring agent- Examples of colorants include carbon black, chrome yellow, Hansa Yellow, benzidine yellow, threne yellow, quinoline yellow, pigment yellow, permanent orange GTR, pyrazolone orange, Balkan orange, watch young red, permanent red, brilliant carmine 3B, brilliant carmine 6B, DuPont oil red, pyrazolone red, lithol red, rhodamine B lake, lake red C, pigment red, rose bengal, aniline blue, Examples of suitable dyes include pigments such as ultramarine blue, chalco oil blue, methylene blue chloride, phthalocyanine blue, pigment blue, phthalocyanine green, and malachite green oxalate; and dyes such as acridine-based, xanthene-based, azo-based, benzoquinone-based, azine-based, anthraquinone-based, thioindigo-based, dioxazine-based, thiazine-based, azomethine-based, indigo-based, phthalocyanine-based, aniline black-based, polymethine-based, triphenylmethane-based, diphenylmethane-based, and thiazole-based dyes. The colorant may be used alone or in combination of two or more kinds.

[0090] The colorant may be surface-treated as needed, or may be used in combination with a dispersant. Furthermore, a plurality of colorants may be used in combination.

[0091] The content of the colorant is preferably from 1% by mass to 30% by mass, and more preferably from 3% by mass to 15% by mass, based on the total mass of the toner particles.

[0092] -Mold release agent- Examples of release agents include hydrocarbon waxes, natural waxes such as carnauba wax, rice wax, and candelilla wax, synthetic or mineral / petroleum waxes such as montan wax, and ester waxes such as fatty acid esters and montanic acid esters, but are not limited thereto.

[0093] The melting temperature of the release agent is preferably 50°C or higher and 110°C or lower, and more preferably 60°C or higher and 100°C or lower. The melting temperature is determined from a DSC curve obtained by differential scanning calorimetry (DSC) by using the "melting peak temperature" described in the method for determining the melting temperature in JIS K7121:1987 "Method for measuring transition temperatures of plastics."

[0094] The content of the release agent is preferably from 1% by mass to 20% by mass, and more preferably from 5% by mass to 15% by mass, based on the total mass of the toner particles.

[0095] -Other additives- Examples of other additives include known additives such as magnetic materials, charge control agents, inorganic powders, etc. These additives are contained in the toner particles as internal additives.

[0096] -Characteristics of toner particles, etc.- The toner particles may be toner particles of a single layer structure, or may be toner particles of a so-called core-shell structure composed of a core part (core particle) and a coating layer (shell layer) that coats the core part. The toner particles having a core-shell structure may be composed of, for example, a core containing a binder resin and, if necessary, other additives such as a colorant and a release agent, and a coating layer containing the binder resin.

[0097] The volume average particle size (D50v) of the toner particles is preferably 2 μm or more and 10 μm or less, and more preferably 4 μm or more and 8 μm or less. The volume average particle size (D50v) of the toner particles is measured using a Coulter Multisizer II (manufactured by Beckman Coulter), and the electrolyte is measured using an ISOTON-II (manufactured by Beckman Coulter). For the measurement, 0.5 mg to 50 mg of the sample to be measured is added to 2 ml of a 5 mass % aqueous solution of a surfactant (preferably sodium alkylbenzene sulfonate) as a dispersant, and this is then added to 100 ml to 150 ml of the electrolyte. The electrolyte solution containing the suspended sample is dispersed in an ultrasonic disperser for 1 minute, and the particle size distribution of particles with a particle size range of 2 μm to 60 μm is measured using a Coulter Multisizer II with an aperture diameter of 100 μm. 50,000 particles are sampled. The volume-based particle size distribution is plotted from the smallest diameter side, and the particle size at which the cumulative 50% is reached is defined as the volume average particle size D50v.

[0098] The average circularity of the toner particles is preferably 0.94 or more and 1.00 or less, and more preferably 0.95 or more and 0.98 or less. The average circularity of toner particles is calculated by (circular equivalent perimeter) / (perimeter) [(perimeter of a circle having the same projected area as the particle image) / (perimeter of the particle projected image)]. Specifically, this value is measured by the following method. First, the toner particles to be measured are sucked and collected, forming a flat flow, and a still image of the particles is captured by instantaneously activating a strobe light, and the particle image is analyzed using a flow-type particle image analyzer (FPIA-3000 manufactured by Sysmex Corporation).The number of samples to be sampled when calculating the average circularity is 3,500. When the toner contains external additives, the toner (developer) to be measured is dispersed in water containing a surfactant, and then ultrasonic treatment is performed to obtain toner particles from which the external additives have been removed.

[0099] -Method of manufacturing toner particles- The toner particles may be produced by any of a dry production method (for example, a kneading and pulverization method) and a wet production method (for example, an aggregation and coalescence method, a suspension polymerization method, a dissolution and suspension method). There are no particular limitations on these production methods, and any known production method may be used. Among these, it is preferable to obtain toner particles by the aggregation and coalescence method.

[0100] Specifically, for example, when toner particles are produced by the aggregation and coalescence method, the toner particles are produced through the following steps: a step of preparing a resin particle dispersion in which resin particles to be a binder resin are dispersed (resin particle dispersion preparation step); a step of aggregating resin particles (and other particles, as needed) in the resin particle dispersion (in a dispersion after mixing other particle dispersions, as needed) to form aggregated particles (aggregated particle formation step); and a step of heating the aggregated particle dispersion in which the aggregated particles are dispersed, fusing and coalescing the aggregated particles to form toner particles (fusion and coalescence step).

[0101] Each step will be described in detail below. In the following description, a method for obtaining toner particles containing a colorant and a release agent will be described, but the colorant and the release agent are used as needed. Of course, other additives than the colorant and the release agent may also be used.

[0102] -Resin particle dispersion preparation process- Along with a resin particle dispersion in which resin particles serving as a binder resin are dispersed, for example, a colorant particle dispersion in which colorant particles are dispersed and a release agent particle dispersion in which release agent particles are dispersed are prepared.

[0103] The resin particle dispersion is prepared, for example, by dispersing resin particles in a dispersion medium using a surfactant.

[0104] Examples of the dispersion medium used in the resin particle dispersion include aqueous media. Examples of aqueous media include water such as distilled water and ion-exchanged water, alcohols, etc. These may be used alone or in combination of two or more.

[0105] Examples of surfactants include anionic surfactants such as sulfate ester salts, sulfonate salts, phosphate esters, and soaps; cationic surfactants such as amine salts and quaternary ammonium salts; and nonionic surfactants such as polyethylene glycols, alkylphenol ethylene oxide adducts, and polyhydric alcohols. Among these, anionic surfactants and cationic surfactants are particularly preferred. Nonionic surfactants may be used in combination with anionic surfactants or cationic surfactants. The surfactants may be used alone or in combination of two or more.

[0106] In a resin particle dispersion, resin particles can be dispersed in a dispersion medium by common dispersion methods such as a rotary shear homogenizer, a ball mill with media, a sand mill, or a Dynomill. Depending on the type of resin particles, the resin particles may be dispersed in a dispersion medium by a phase inversion emulsification method. The phase inversion emulsification method involves dissolving the resin to be dispersed in a hydrophobic organic solvent in which the resin is soluble, neutralizing the organic continuous phase (O phase) by adding a base, and then introducing an aqueous medium (W phase) to invert the phase from W / O to O / W, thereby dispersing the resin in particulate form in the aqueous medium.

[0107] The volume average particle size of the resin particles dispersed in the resin particle dispersion is, for example, preferably from 0.01 μm to 1 μm, more preferably from 0.08 μm to 0.8 μm, and even more preferably from 0.1 μm to 0.6 μm. The volume average particle size of resin particles is measured using a particle size distribution obtained by measurement with a laser diffraction particle size distribution analyzer (for example, LA-700 manufactured by Horiba, Ltd.), and the cumulative distribution for the volume of the divided particle size range (channel) is subtracted from the small particle size side, and the particle size at which the cumulative 50% of all particles is measured is taken as the volume average particle size D50v. The volume average particle sizes of particles in other dispersions are measured in the same way.

[0108] The content of resin particles contained in the resin particle dispersion is preferably 5% by mass or more and 50% by mass or less, and more preferably 10% by mass or more and 40% by mass or less.

[0109] In the same manner as in the resin particle dispersion, for example, a colorant particle dispersion and a release agent particle dispersion are also prepared. That is, the volume average particle size, dispersion medium, dispersion method, and particle content of the particles in the resin particle dispersion are the same for the colorant particles dispersed in the colorant particle dispersion and the release agent particles dispersed in the release agent particle dispersion.

[0110] -Agglomerated particle formation process- Next, the resin particle dispersion, the colorant particle dispersion, and the release agent particle dispersion are mixed together. Then, in the mixed dispersion, the resin particles, colorant particles, and release agent particles are hetero-aggregated to form aggregated particles containing the resin particles, colorant particles, and release agent particles and having a diameter close to that of the target toner particles.

[0111] Specifically, for example, an aggregating agent is added to the mixed dispersion, and the pH of the mixed dispersion is adjusted to be acidic (for example, pH 2 or higher and 5 or lower), and a dispersion stabilizer is added as necessary. After that, the mixed dispersion is heated to a temperature close to the glass transition temperature of the resin particles (specifically, for example, the glass transition temperature of the resin particles -30°C or higher and the glass transition temperature -10°C or lower), causing the particles dispersed in the mixed dispersion to aggregate and form aggregated particles. In the aggregate particle formation step, for example, the mixed dispersion may be stirred with a rotary shear homogenizer, an aggregating agent may be added at room temperature (e.g., 25°C), the pH of the mixed dispersion may be adjusted to an acidic value (e.g., pH 2 or more and 5 or less), a dispersion stabilizer may be added as needed, and then the mixture may be heated.

[0112] Examples of the flocculant include a surfactant having a polarity opposite to that of the surfactant contained in the mixed dispersion, an inorganic metal salt, and a divalent or higher metal complex. When a metal complex is used as the flocculant, the amount of surfactant used can be reduced, and the charging characteristics can be improved. If necessary, an additive that forms a complex or a similar bond with the metal ions of the flocculant may be used together with the flocculant, and a chelating agent is preferably used as this additive.

[0113] Examples of inorganic metal salts include metal salts such as calcium chloride, calcium nitrate, barium chloride, magnesium chloride, zinc chloride, aluminum chloride, and aluminum sulfate; and inorganic metal salt polymers such as polyaluminum chloride, polyaluminum hydroxide, and calcium polysulfide. The chelating agent may be a water-soluble chelating agent, such as hydroxycarboxylic acid (e.g., tartaric acid, citric acid, gluconic acid), or aminocarboxylic acid (e.g., iminodiacetic acid (IDA), nitrilotriacetic acid (NTA), or ethylenediaminetetraacetic acid (EDTA). The amount of the chelating agent added is preferably 0.01 parts by mass or more and 5.0 parts by mass or less, and more preferably 0.1 parts by mass or more and less than 3.0 parts by mass, relative to 100 parts by mass of the resin particles.

[0114] -Fusion / coalescence process- Next, the aggregated particle dispersion liquid in which the aggregated particles are dispersed is heated, for example, to a temperature equal to or higher than the glass transition temperature of the resin particles (for example, a temperature 10°C to 30°C higher than the glass transition temperature of the resin particles), to fuse and coalesce the aggregated particles and form toner particles.

[0115] Through the above steps, toner particles are obtained. After obtaining the aggregated particle dispersion liquid in which the aggregated particles are dispersed, the toner particles may be produced through the following steps: a step of further mixing the aggregated particle dispersion liquid with a resin particle dispersion liquid in which resin particles are dispersed, and aggregating the aggregated particles so that further resin particles adhere to the surfaces of the aggregated particles to form second aggregated particles; and a step of heating the second aggregated particle dispersion liquid in which the second aggregated particles are dispersed, and fusing and coalescing the second aggregated particles to form toner particles having a core-shell structure.

[0116] After the fusion and coalescence process is completed, the toner particles formed in the solution are subjected to a known washing process, solid-liquid separation process, and drying process to obtain dried toner particles. In the washing process, from the viewpoint of chargeability, it is preferable to perform sufficient substitution washing with ion-exchanged water. In the solid-liquid separation process, from the viewpoint of productivity, it is preferable to perform suction filtration, pressure filtration, etc. In the drying process, from the viewpoint of productivity, it is preferable to perform freeze drying, flash drying, fluidized drying, vibration-type fluidized drying, etc.

[0117] The toner according to this embodiment is produced by, for example, adding an external additive to the obtained dry toner particles and mixing them. The mixing can be carried out using, for example, a V blender, a Henschel mixer, a Loedige mixer, or the like. Furthermore, if necessary, coarse particles may be removed from the toner using a vibrating sieve, an air sieve, or the like.

[0118] -External additives- Examples of external additives include inorganic particles, such as SiO2, TiO2, Al2O3, CuO, ZnO, SnO2, CeO2, Fe2O3, MgO, BaO, CaO, K2O, Na2O, ZrO2, CaO·SiO2, and K2O·(TiO2). n , Al2O3·2SiO2, CaCO3, MgCO3, BaSO4, MgSO4, etc.

[0119] The surfaces of inorganic particles as external additives are preferably subjected to a hydrophobic treatment. The hydrophobic treatment is carried out, for example, by immersing the inorganic particles in a hydrophobic treatment agent. The hydrophobic treatment agent is not particularly limited, and examples thereof include silane coupling agents, silicone oils, titanate coupling agents, and aluminum coupling agents. These may be used alone or in combination of two or more. The amount of the hydrophobic treatment agent is usually, for example, 1 part by mass or more and 10 parts by mass or less per 100 parts by mass of the inorganic particles.

[0120] Examples of external additives include resin particles (resin particles such as polystyrene, polymethyl methacrylate, and melamine resin), cleaning agents (for example, metal salts of higher fatty acids such as zinc stearate, and particles of fluorine-based polymers).

[0121] The amount of the external additive added is preferably 0.01% by mass or more and 5% by mass or less, and more preferably 0.01% by mass or more and 2.0% by mass or less, based on the toner particles.

[0122] In the electrostatic image developer according to the present embodiment, the volume average particle diameter S T and the volume average particle diameter S of the carrier for developing electrostatic images C Ratio to (S C / S T ) is preferably 4 or more and 8 or less, and more preferably 5 or more and 7 or less.

[0123] <Image forming device, image forming method> The image forming apparatus according to the present embodiment includes an image carrier, a charging unit that charges the surface of the image carrier, an electrostatic image forming unit that forms an electrostatic image on the surface of the charged image carrier, a developing unit that contains an electrostatic image developer and develops the electrostatic image formed on the surface of the image carrier as a toner image using the electrostatic image developer, a transfer unit that transfers the toner image formed on the surface of the image carrier to the surface of a recording medium, and a fixing unit that fixes the toner image transferred to the surface of the recording medium. The electrostatic image developer according to the present embodiment is used as the electrostatic image developer.

[0124] The image forming apparatus according to this embodiment carries out an image forming method (the image forming method according to this embodiment) that includes a charging step of charging the surface of an image carrier, an electrostatic image forming step of forming an electrostatic image on the surface of the charged image carrier, a developing step of developing the electrostatic image formed on the surface of the image carrier as a toner image using the electrostatic image developer according to this embodiment, a transfer step of transferring the toner image formed on the surface of the image carrier to the surface of a recording medium, and a fixing step of fixing the toner image transferred to the surface of the recording medium.

[0125] The image forming apparatus according to the present embodiment may be any of known image forming apparatuses, such as a direct transfer type apparatus that directly transfers a toner image formed on the surface of an image carrier to a recording medium; an intermediate transfer type apparatus that primarily transfers a toner image formed on the surface of an image carrier to the surface of an intermediate transfer medium, and then secondarily transfers the toner image transferred to the surface of the intermediate transfer medium to the surface of a recording medium; an apparatus equipped with a cleaning means that cleans the surface of the image carrier after the transfer of the toner image but before charging; and an apparatus equipped with a discharging means that irradiates the surface of the image carrier with discharging light to discharge it after the transfer of the toner image but before charging. When the image forming apparatus according to the present embodiment is an apparatus of the intermediate transfer type, the transfer means is configured to have, for example, an intermediate transfer body onto whose surface a toner image is transferred, a primary transfer means for primarily transferring the toner image formed on the surface of the image carrier onto the surface of the intermediate transfer body, and a secondary transfer means for secondarily transferring the toner image transferred onto the surface of the intermediate transfer body onto the surface of the recording medium.

[0126] In the image forming apparatus according to the present embodiment, for example, the portion including the developing means may have a cartridge structure (process cartridge) that is detachably attached to the image forming apparatus. As the process cartridge, for example, a process cartridge that contains the electrostatic image developer according to the present embodiment and is equipped with the developing means is preferably used.

[0127] An example of an image forming apparatus according to the present embodiment will be described below, but the present invention is not limited to this. In the following description, the main parts shown in the drawings will be described, and the description of the rest will be omitted.

[0128] FIG. 1 is a schematic diagram showing the configuration of an image forming apparatus according to this embodiment. The image forming apparatus shown in Figure 1 includes first through fourth electrophotographic image forming units 10Y, 10M, 10C, and 10K (image forming means) that output images in the colors yellow (Y), magenta (M), cyan (C), and black (K) based on color-separated image data. These image forming units (hereinafter sometimes simply referred to as "units") 10Y, 10M, 10C, and 10K are arranged side by side horizontally spaced apart by predetermined distances. These units 10Y, 10M, 10C, and 10K may be process cartridges that are detachably attached to the image forming apparatus.

[0129] An intermediate transfer belt (an example of an intermediate transfer body) 20 is provided above each of the units 10Y, 10M, 10C, and 10K and extends through each unit. The intermediate transfer belt 20 is provided wrapped around a drive roll 22 and a support roll 24, and runs in a direction from the first unit 10Y to the fourth unit 10K. A force is applied to the support roll 24 by a spring or the like (not shown) in a direction away from the drive roll 22, and tension is applied to the intermediate transfer belt 20 wrapped around them. An intermediate transfer body cleaning device 30 is provided on the image carrier side of the intermediate transfer belt 20, facing the drive roll 22. The developing devices (examples of developing means) 4Y, 4M, 4C, and 4K of the units 10Y, 10M, 10C, and 10K are supplied with yellow, magenta, cyan, and black toner contained in toner cartridges 8Y, 8M, 8C, and 8K, respectively.

[0130] Since the first to fourth units 10Y, 10M, 10C, and 10K have the same configuration and operation, we will explain here the first unit 10Y, which forms a yellow image and is arranged upstream in the direction of travel of the intermediate transfer belt.

[0131] The first unit 10Y has a photoreceptor 1Y that acts as an image carrier. Around the photoreceptor 1Y, there are arranged in this order: a charging roll (an example of a charging means) 2Y that charges the surface of the photoreceptor 1Y to a predetermined potential; an exposure device (an example of an electrostatic image forming means) 3 that exposes the charged surface to a laser beam 3Y based on a color-separated image signal to form an electrostatic image; a developing device (an example of a developing means) 4Y that supplies charged toner to the electrostatic image to develop it; a primary transfer roll 5Y (an example of a primary transfer means) that transfers the developed toner image onto an intermediate transfer belt 20; and a photoreceptor cleaning device (an example of a cleaning means) 6Y that removes toner remaining on the surface of the photoreceptor 1Y after the primary transfer. The primary transfer roll 5Y is disposed inside the intermediate transfer belt 20 and is provided at a position facing the photoreceptor 1Y. A bias power supply (not shown) that applies a primary transfer bias is connected to the primary transfer rolls 5Y, 5M, 5C, and 5K of each unit. Each bias power supply changes the value of the transfer bias applied to each primary transfer roll under the control of a control unit (not shown).

[0132] The operation of forming a yellow image in the first unit 10Y will be described below. First, prior to operation, the surface of the photosensitive member 1Y is charged to a potential of −600V to −800V by the charging roll 2Y. The photoconductor 1Y has conductivity (for example, a volume resistivity of 1×10 at 20°C). -6 The photosensitive layer is formed by laminating a photosensitive layer on a substrate with a resistivity of Ωcm or less. This photosensitive layer normally has a high resistance (the resistance of ordinary resins), but when irradiated with a laser beam, the resistivity of the irradiated portion changes. Therefore, the exposed surface of the photosensitive element 1Y is irradiated with a laser beam 3Y from the exposure device 3 in accordance with image data for yellow sent from a control unit (not shown). This forms an electrostatic charge image of a yellow image pattern on the surface of the photosensitive element 1Y.

[0133] An electrostatic image is an image formed on the surface of the photosensitive element 1Y by charging it; the laser beam 3Y reduces the resistivity of the irradiated portion of the photosensitive layer, causing the charged charges on the surface of the photosensitive element 1Y to flow, while the charges remain in the portions not irradiated by the laser beam 3Y, forming a so-called negative latent image. The electrostatic image formed on the photoreceptor 1Y rotates to a predetermined development position as the photoreceptor 1Y moves, and at this development position, the electrostatic image on the photoreceptor 1Y is developed into a toner image by the developing device 4Y and made visible.

[0134] The developing device 4Y contains an electrostatic image developer containing, for example, at least yellow toner and a carrier. The yellow toner is frictionally charged by being stirred inside the developing device 4Y, and is held on a developer roll (an example of a developer holder) with a charge of the same polarity (negative polarity) as the charge on the photoreceptor 1Y. As the surface of the photoreceptor 1Y passes through the developing device 4Y, the yellow toner electrostatically adheres to the discharged latent image portion on the surface of the photoreceptor 1Y, and the latent image is developed with the yellow toner. The photoreceptor 1Y on which the yellow toner image has been formed continues to travel at a predetermined speed, and the toner image developed on the photoreceptor 1Y is transported to a predetermined primary transfer position.

[0135] When the yellow toner image on the photoreceptor 1Y is transported to the primary transfer position, a primary transfer bias is applied to the primary transfer roll 5Y, and an electrostatic force from the photoreceptor 1Y to the primary transfer roll 5Y acts on the toner image, causing the toner image on the photoreceptor 1Y to be transferred onto the intermediate transfer belt 20. The transfer bias applied at this time has a (+) polarity opposite to the (-) polarity of the toner, and is controlled to, for example, +10 μA by a control unit (not shown) in the first unit 10Y. On the other hand, the toner remaining on the photoreceptor 1Y is removed and collected by the photoreceptor cleaning device 6Y.

[0136] The primary transfer bias applied to the primary transfer rolls 5M, 5C, and 5K of the second unit 10M and subsequent units is also controlled in accordance with the first unit. In this way, the intermediate transfer belt 20 onto which the yellow toner image has been transferred by the first unit 10Y is conveyed sequentially through the second to fourth units 10M, 10C, and 10K, and the toner images of each color are superimposed and transferred.

[0137] The intermediate transfer belt 20, onto which the four-color toner images have been multiplex-transferred through the first to fourth units, reaches a secondary transfer section composed of the intermediate transfer belt 20, a support roll 24 in contact with the inner surface of the intermediate transfer belt, and a secondary transfer roll (an example of a secondary transfer means) 26 arranged on the image bearing surface side of the intermediate transfer belt 20. Meanwhile, recording paper (an example of a recording medium) P is fed via a feed mechanism into the gap between the secondary transfer roll 26 and the intermediate transfer belt 20 at a predetermined timing, and a secondary transfer bias is applied to the support roll 24. The transfer bias applied at this time has a negative polarity, the same as the negative polarity of the toner. Electrostatic force from the intermediate transfer belt 20 toward the recording paper P acts on the toner image, transferring the toner image on the intermediate transfer belt 20 onto the recording paper P. The secondary transfer bias at this time is determined according to resistance detected by resistance detection means (not shown) that detects resistance in the secondary transfer section, and is voltage-controlled.

[0138] Thereafter, the recording paper P is sent to the pressure contact portion (nip portion) of a pair of fixing rolls in a fixing device (an example of fixing means) 28, where the toner image is fixed onto the recording paper P, forming a fixed image.

[0139] Examples of the recording paper P onto which the toner image is transferred include plain paper used in electrophotographic copiers, printers, etc. In addition to the recording paper P, examples of the recording medium include overhead projector sheets and the like. To further improve the smoothness of the image surface after fixing, it is preferable that the surface of the recording paper P is also smooth. For example, coated paper in which the surface of plain paper is coated with resin or the like, or art paper for printing, etc., is preferably used.

[0140] The recording paper P on which the color image has been fixed is conveyed toward the discharge section, and the series of color image forming operations is completed.

[0141] <Process cartridge> The process cartridge according to this embodiment is a process cartridge that is detachably attached to an image forming apparatus and that contains the electrostatic image developer according to this embodiment and is equipped with a developing means that develops an electrostatic image formed on the surface of an image carrier using the electrostatic image developer into a toner image.

[0142] The process cartridge according to this embodiment is not limited to the above configuration, but may also be configured to include a developing means and, if necessary, at least one other means selected from an image carrier, a charging means, an electrostatic image forming means, and a transfer means.

[0143] An example of a process cartridge according to the present embodiment will be described below, but the present invention is not limited to this. In the following description, the main parts shown in the drawings will be described, and the description of the rest will be omitted.

[0144] FIG. 2 is a schematic diagram showing the configuration of the process cartridge according to the present embodiment. The process cartridge 200 shown in FIG. 2 is configured to integrally combine and hold a photosensitive member 107 (an example of an image carrier), a charging roll 108 (an example of a charging means) provided around the photosensitive member 107, a developing device 111 (an example of a developing means), and a photosensitive member cleaning device 113 (an example of a cleaning means), which are held by a housing 117 provided with, for example, mounting rails 116 and an opening 118 for exposure, and is made into a cartridge. In FIG. 2, 109 denotes an exposure device (an example of an electrostatic image forming means), 112 denotes a transfer device (an example of a transfer means), 115 denotes a fixing device (an example of a fixing means), and 300 denotes recording paper (an example of a recording medium). [Example]

[0145] Hereinafter, embodiments of the present invention will be described in detail with reference to examples, but the embodiments of the present invention are not limited to these examples. In the following description, unless otherwise specified, "parts" and "%" are based on mass.

[0146] In the following description, the volume average particle size refers to the particle size D50v, which is the cumulative 50% particle size from the smallest diameter side in the volume-based particle size distribution.

[0147] <Toner Production> -Preparation of Colorant Particle Dispersion 1- Cyan pigment (copper phthalocyanine B15:3 (manufactured by Dainichi Seika Color & Chemicals Mfg. Co., Ltd.)): 50 parts by mass Anionic surfactant: Neogen SC (manufactured by Daiichi Kogyo Seiyaku Co., Ltd.) 5 parts by mass Ion-exchanged water: 200 parts by mass The above ingredients were mixed and dispersed for 5 minutes using an Ultra-Turrax manufactured by IKA Corporation, and then for 10 minutes using an ultrasonic bath to obtain a colorant particle dispersion 1 with a solid content of 21%. The volume average particle size was measured using a particle size analyzer LA-700 manufactured by Horiba Ltd. and found to be 160 nm.

[0148] -Preparation of release agent particle dispersion 1- Paraffin wax: HNP-9 (manufactured by Nippon Seiro Co., Ltd.): 19 parts by weight Anionic surfactant: Neogen SC (manufactured by Daiichi Kogyo Seiyaku Co., Ltd.): 1 part by mass Ion-exchanged water: 80 parts by weight The above ingredients were mixed in a heat-resistant container, heated to 90°C, and stirred for 30 minutes. The melt was then passed through a Gaulin homogenizer from the bottom of the container, and after a circulation operation equivalent to three passes was carried out under a pressure condition of 5 MPa, the pressure was increased to 35 MPa, and a circulation operation equivalent to three more passes was carried out. The resulting emulsion was cooled to 40°C or below in the heat-resistant solution, yielding release agent particle dispersion 1. The volume average particle size was measured using a particle size analyzer LA-700 manufactured by Horiba, Ltd., and found to be 240 nm.

[0149] -Resin particle dispersion 1- [Oil layer] Styrene (Fujifilm Wako Pure Chemical Industries, Ltd.): 30 parts by mass n-Butyl acrylate (Fujifilm Wako Pure Chemical Industries, Ltd.): 10 parts by mass β-carboxyethyl acrylate (manufactured by Rhodia Nikka Co., Ltd.): 1.3 parts by mass Dodecanethiol (Fujifilm Wako Pure Chemical Industries, Ltd.): 0.4 parts by mass

[0150] [Water layer 1] Ion-exchanged water: 17 parts by mass Anionic surfactant (Dowfax, manufactured by The Dow Chemical Company): 0.4 parts by mass

[0151] [Water layer 2] Ion-exchanged water: 40 parts by weight Anionic surfactant (Dowfax, manufactured by The Dow Chemical Company): 0.05 parts by mass Ammonium peroxodisulfate (Fujifilm Wako Pure Chemical Industries, Ltd.): 0.4 parts by mass

[0152] The oil layer components and aqueous layer 1 components were placed in a flask and mixed with stirring to form a monomer emulsion dispersion. The aqueous layer 2 components were placed in a reaction vessel, the atmosphere in the vessel was thoroughly purged with nitrogen, and the reaction system was heated in an oil bath with stirring until the temperature reached 75°C. The monomer emulsion dispersion was gradually added dropwise to the reaction vessel over 3 hours to carry out emulsion polymerization. After the dropwise addition was completed, polymerization was continued at 75°C and terminated after 3 hours. The volume average particle diameter D50v of the resulting resin particles was measured using a laser diffraction particle size analyzer LA-700 (Horiba, Ltd.) and was found to be 250 nm. The glass transition temperature of the resin was measured using a differential scanning calorimeter (DSC-50, Shimadzu Corporation) at a heating rate of 10°C / min and was found to be 53°C. The number average molecular weight (polystyrene equivalent) was measured using a molecular weight analyzer (HLC-8020, Tosoh Corporation) and THF as the solvent and was found to be 13,000. This resulted in a resin particle dispersion with a volume average particle diameter of 250 nm, a solids content of 42%, a glass transition temperature of 52°C, and a number average molecular weight Mn of 13,000.

[0153] -Preparation of Toner 1- Resin particle dispersion: 150 parts by mass Colorant particle dispersion: 30 parts by mass Release agent particle dispersion: 40 parts by mass Polyaluminum chloride: 0.4 parts by mass The above components were thoroughly mixed and dispersed in a stainless steel flask using an Ultra Turrax manufactured by IKE Corporation, and then the flask was heated to 48°C while stirring in a heating oil bath. After maintaining at 48°C for 80 minutes, 70 parts by mass of the same resin particle dispersion liquid as above was slowly added thereto. The pH of the system was then adjusted to 6.0 using a 0.5 mol / L aqueous solution of sodium hydroxide. The stainless steel flask was then sealed, the stirring shaft was magnetically sealed, and the mixture was heated to 97°C and maintained at this temperature for 3 hours while continuing to stir. After the reaction was complete, the mixture was cooled at a rate of 1°C / min, filtered, thoroughly washed with ion-exchanged water, and then subjected to solid-liquid separation using Nutsche suction filtration. The mixture was then redispersed in 3,000 parts by weight of ion-exchanged water at 40°C, stirred and washed for 15 minutes at 300 rpm. This washing procedure was repeated five more times, and when the filtrate reached a pH of 6.54 and an electrical conductivity of 6.5 μS / cm, it was subjected to solid-liquid separation using Nutsche suction filtration using No. 5A filter paper. Vacuum drying was then continued for 12 hours to obtain toner base particles. The volume average particle diameter D50v of the toner base particles was measured using a Coulter counter and found to be 6.2 μm, and the volume average particle size distribution index GSDv was 1.20. Shape observation using a Luzex image analyzer manufactured by Luzex Corporation revealed that the particle shape factor SF1 was 135 and that the particles were potato-shaped. The glass transition temperature of the toner was 52°C. Furthermore, silica (SiO2) particles with an average primary particle diameter of 40 nm that had been surface-hydrophobized with hexamethyldisilazane (hereinafter sometimes abbreviated as "HMDS") and metatitanic acid compound particles with an average primary particle diameter of 20 nm, which are the reaction product of metatitanic acid and isobutyltrimethoxysilane, were added to this toner so that the surface coverage of the toner particles was 40%, and the mixture was mixed using a Henschel mixer to produce Toner 1.

[0154] <Preparation of magnetic particles 1> magnetic particles 1 A mixture of 1,318 parts by weight of Fe2O3, 586 parts by weight of Mn(OH)2, 96 parts by weight of Mg(OH)2, and 12 parts by weight of SrCO3 was mixed with a dispersant, water, and zirconia beads with a media diameter of 1 mm, and then crushed and mixed in a sand mill. The zirconia beads were filtered and dried, and then further crushed in a rotary kiln at 20 rpm and 900°C to form a mixed oxide. Next, a dispersant and water were added, and 6.6 parts by weight of polyvinyl alcohol was added, and the mixture was crushed in a wet ball mill to a volume average particle size of 1.2 μm. The mixture was then granulated and dried in a spray dryer to a dry particle size of 34 μm. The mixture was then fired in an electric furnace at 1420°C for 5 hours in an oxygen-nitrogen mixed atmosphere with an oxygen concentration of 1%. The resulting particles were then crushed and classified, then heated in a rotary kiln at 15 rpm and 900°C for 2 hours, and similarly classified to obtain magnetic particles 1. The volume average particle size of magnetic particles 1 was 32 μm and SF1 was 112.

[0155] <Preparation of magnetic particles 2> 1,318 parts by weight of Fe2O3, 586 parts by weight of Mn(OH)2, 96 parts by weight of Mg(OH)2, and 12 parts by weight of SrCO3 were mixed, and then a dispersant, water, and zirconia beads with a media diameter of 1 mm were added. The mixture was then crushed and mixed in a sand mill. The zirconia beads were then filtered and dried. Next, a dispersant and water were added, and 6.6 parts by weight of polyvinyl alcohol was added, and the mixture was pulverized in a wet ball mill until the volume average particle size reached 3 μm. The mixture was then granulated and dried in a spray dryer until the dry particle size reached 34 μm. The mixture was then fired in an electric furnace at 1230°C for 8 hours in an oxygen-nitrogen mixed atmosphere with an oxygen concentration of 1.1%. The resulting particles were then subjected to a crushing process, a classification process, and then a classification process to obtain magnetic particles 2. The volume average particle size of magnetic particles 2 was 32 μm and the SF1 was 138.

[0156] [Table 1]

[0157] <Particles A to be added to the carrier resin coating layer> As particles A, particles 1 to 11 shown in Table 2 were prepared.

[0158] [Table 2]

[0159] [Preparation of Coating Liquid 1] Cyclohexyl acrylate resin (weight average molecular weight 50,000): 36 parts by mass Carbon black VXC72 (manufactured by Cabot Corporation): 4 parts by mass Toluene: 250 parts by mass Isopropyl alcohol: 50 parts by weight The above components and glass beads (particle size: 1 mm, same amount as toluene) were placed in a sand mill manufactured by Kansai Paint Co., Ltd. and stirred at a rotation speed of 1,200 rpm for 30 minutes to prepare coating solution 1 with a solid content of 11%.

[0160] (Examples 1 to 14 and Comparative Examples 1 to 6) <Preparation of Resin-Coated Carrier> -Creating Carrier 1- 2,000 parts of ferrite particles 1 were placed in a vacuum degassing kneader, and 560 parts of coating liquid 1 were added. The mixture was stirred at 60°C and reduced pressure to -200 mmHg for 15 minutes, after which the mixture was heated and reduced pressure to 94°C / -720 mmHg for 30 minutes, followed by stirring and drying to obtain coated particles. The mixture was then sieved through a 75 μm mesh sieve to obtain a carrier. The SF1 of the resulting carrier was 113. Next, 500 parts of this carrier and 0.5 parts of particles 1 as particles A were charged into a V blender and mixed at 20 rpm for 20 minutes to obtain carrier 1.

[0161] -Creating carriers 2 to 20- Carriers 2 to 20 were each obtained in the same manner as carrier 1, except that the type of magnetic particles and the type and content (addition amount) of particles A were changed as shown in Table 3.

[0162] <Preparation of Electrostatic Image Developer> -Preparation of Developer 1- 500 parts of carrier 1 and 40 parts of toner were charged into a V-blender and mixed at 20 rpm for 20 minutes to obtain developer 1.

[0163] -Preparation of Developers 2 to 20- Developers 2 to 20 were obtained in the same manner as in the preparation of developer 1, except that the carrier was changed to one shown in Table 3.

[0164] <Measurement of the average particle size of inorganic particles in the resin coating layer> The carrier was embedded in epoxy resin and cut with a microtome to prepare a carrier cross section. SEM images of the carrier cross section were taken with a scanning transmission electron microscope (Hitachi, S-4100) and imported into an image processing analyzer (Nireco, Luzex AP) for image analysis. One hundred silica particles (primary particles) were randomly selected from the resin coating layer, and their equivalent circular diameters (nm) were calculated. The arithmetic mean was calculated, and this was used as the average particle diameter (nm) of the inorganic particles.

[0165] <Measurement of the average thickness of the resin coating layer> The SEM image was imported into an image processing analyzer (Luzex AP, manufactured by Nireco Corporation) and subjected to image analysis. The thickness (μm) of the resin coating layer was measured at 10 randomly selected locations per carrier particle, and then measurements were taken for 100 carrier particles. The arithmetic mean of all measurements was calculated and this was taken as the average thickness (μm) of the resin coating layer.

[0166] <Measurement of the residual rate X of particle A> Before printing or after printing 100 or fewer sheets of any image, the developer was passed through a 16 μm mesh to remove the toner, and carrier A was extracted. A 16 μm mesh cage was used to remove the toner using an air blower. Similarly, after printing 5,000 full-page A4 paper images with a 30% halftone at 120 sheets per minute, the developer was cleaned of toner and carrier B was extracted. The fluorescent X-ray net intensity of both was measured, and the residual ratio X was calculated from the net intensity α of carrier A and the net intensity β of carrier B using the formula: X = β / α.

[0167] <Method for separating particle A from carrier> To separate particles A from the carrier, the toner is removed from the developer by air blowing, as described above. The resulting carrier is placed in ion-exchange water and treated with ultrasound at 40 Hz for 15 seconds, after which the carrier is filtered and separated. The resulting filtrate is dried, and freeze-dried while the particles are still not completely dry. The resulting particles are then further dried at 15°C and 15% RH for one week.

[0168] <Measurement of moisture content of particle A> After leaving the particles for 48 hours under conditions of 28°C and 85% RH, the moisture content of the particles A was determined by a heated Mettler from the difference in weight before and after heating at 150°C for 20 minutes.

[0169] <Measurement of volume resistivity of particle A> The volume resistivity of particles A was measured by the following method, where the measurement environment was a temperature of 20°C and a humidity of 50% RH. Two electrodes are placed parallel to each other with a width of 1 mm, and 0.20 g of ferrite particles are placed between them. The cross-sectional area is 2.4 cm. 2 The sample was held in place by a magnet, a voltage of 1,000 V was applied, and the current value was measured. The resistance value was calculated from the obtained current value.

[0170] <Measurement of the standard deviation of particle A> The particle size distribution was measured by image analysis from field emission scanning electron microscope (FE-SEM) images of particles A on the carrier.

[0171] <Collecting magnetic particles from developer> The carrier was separated from the developer using a 16 μm mesh. The coating layer of the separated carrier was dissolved using, for example, toluene to extract the magnetic particles. The solvent was changed arbitrarily to match the coating resin. The dissolution was varied by heating, applying ultrasound, etc., depending on the solvent.

[0172] <Volume average particle size of magnetic particles> The volume average particle size (D50) of the magnetic particles was measured using a laser particle size distribution measuring device LA-700 (manufactured by Horiba, Ltd.).

[0173] <Evaluation of image density unevenness suppression> The obtained developer was charged into a modified DocuCentre 400 machine (capable of 120 ppm) manufactured by Fuji Xerox Co., Ltd., and a 15 cm x 15 cm solid was printed under conditions of 10°C and 15% RH to obtain printed matter A. Printed matter A was evaluated according to the following evaluation criteria (evaluation of initial image density unevenness suppression). Next, 5,000 A4 full-page halftone 30% images were printed at 120 pages per minute. Next, a 15 cm x 15 cm solid image was printed to obtain print B. Print B was evaluated according to the following criteria (evaluation of image density unevenness suppression after high-load printing). The evaluation criteria are as follows: D: A clear difference in shading is visually confirmed in the image C: Slight differences in density are visible in the image and unevenness is confirmed. B: No unevenness is visible to the naked eye, but when magnified 10 times, unevenness is visible. A: No unevenness is observed even when enlarged

[0174] The evaluation results are summarized in Table 4.

[0175] [Table 3]

[0176] [Table 4]

[0177] From the above results, it can be seen that the present embodiment can obtain images with less density unevenness compared to the comparative example, even under high load printing conditions. [Explanation of symbols]

[0178] 1Y, 1M, 1C, 1K Photoconductor (an example of an image carrier) 2Y, 2M, 2C, 2K Charging roll (an example of charging means) 3. Exposure device (an example of an electrostatic image forming means) 3Y, 3M, 3C, 3K laser beam 4Y, 4M, 4C, 4K developing device (an example of developing means) 5Y, 5M, 5C, 5K Primary transfer roll (an example of a primary transfer means) 6Y, 6M, 6C, 6K: Photoconductor cleaning device (an example of a cleaning means) 8Y, 8M, 8C, 8K toner cartridges 10Y, 10M, 10C, 10K image forming units 20 Intermediate transfer belt (an example of an intermediate transfer body) 22 Drive Roll 24 Support Roll 26 Secondary transfer roll (an example of a secondary transfer means) 28 Fixing device (an example of fixing means) 30 Intermediate transfer body cleaning device P Recording paper (an example of a recording medium) 107 Photosensitive body (an example of an image carrier) 108 Charging roll (an example of charging means) 109 Exposure device (an example of electrostatic image forming means) 111 Developing device (an example of developing means) 112 Transfer device (an example of transfer means) 113 Photosensitive drum cleaning device (an example of cleaning means) 115 Fixing device (an example of fixing means) 116 Mounting Rail 117 Cabinet 118 Exposure opening 200 Process Cartridge 300 Recording paper (an example of a recording medium)

Claims

1. The carrier has particles A on its surface in an amount of 0.02% by mass or more and 0.5% by mass or less based on the total mass of the carrier, the particles A are silica particles, a residual rate X of the particles A in the carrier after printing 5,000 full-page A4 paper images of 30% halftone at 10°C, 15% RH, and 120 pages per minute using a modified DocuCentre 400 manufactured by Fuji Xerox Co., Ltd. that is capable of printing at 120 ppm, is 0.3 or more and 1.0 or less in terms of fluorescent X-ray NET intensity; The water content of the particles A is 7% by mass or more and 12% by mass or less with respect to the total mass of the particles A. Carrier for developing electrostatic images.

2. 2. The carrier for developing electrostatic images according to claim 1, wherein the arithmetic mean particle size of the particles A is 60 nm or more and 160 nm or less.

3. The volume resistance of the particles A is 10 12 Ω or more 10 15 3. The carrier for developing electrostatic images according to claim 1, wherein the carrier has a viscosity of Ω or less.

4. 4. The carrier for developing electrostatic images according to claim 1, wherein SF1 of the carrier is 110 or more and 125 or less.

5. 5. The carrier for developing electrostatic images according to claim 1, wherein SF1 of the carrier is 126 or more and 140 or less.

6. 6. The carrier for developing electrostatic images according to claim 1, wherein the particle size distribution of the particles A has a standard deviation of 8 or more and 12 or less.

7. The true specific gravity of the particles A is 1.1 g / cm 3 2.0g / cm or more 3 7. The carrier for developing electrostatic images according to claim 1, wherein the carrier is:

8. 8. The carrier for developing electrostatic images according to claim 1, wherein the carrier comprises magnetic particles and a resin coating layer that coats the magnetic particles.

9. 9. The carrier for developing electrostatic images according to claim 8, wherein the weight average molecular weight of the resin contained in the resin coating layer is less than 300,000.

10. 10. The carrier for developing electrostatic images according to claim 9, wherein the weight average molecular weight of the resin contained in the resin coating layer is less than 250,000.

11. a toner for developing an electrostatic image; and the carrier for developing electrostatic images according to any one of claims 1 to 10. Electrostatic image developer.

12. a developing unit containing the electrostatic image developer according to claim 11 and developing an electrostatic image formed on a surface of an image carrier into a toner image by using the electrostatic image developer, A process cartridge is detachably mounted in an image forming apparatus.

13. an image carrier; a charging means for charging the surface of the image carrier; an electrostatic image forming means for forming an electrostatic image on the charged surface of the image carrier; a developing unit containing the electrostatic image developer according to claim 11 and developing the electrostatic image formed on the surface of the image carrier into a toner image by using the electrostatic image developer; a transfer means for transferring the toner image formed on the surface of the image carrier to the surface of a recording medium; a fixing means for fixing the toner image transferred onto the surface of the recording medium; An image forming apparatus comprising:

14. a charging step of charging the surface of the image carrier; an electrostatic image forming step of forming an electrostatic image on the charged surface of the image carrier; a developing step of developing the electrostatic image formed on the surface of the image carrier into a toner image by using the electrostatic image developer according to claim 11; a transfer step of transferring the toner image formed on the surface of the image carrier to the surface of a recording medium; a fixing step of fixing the toner image transferred onto the surface of the recording medium; An image forming method comprising the steps of:

Citation Information

Patent Citations

  • Carrier for developing electrostatic latent image, process cartridge, and image forming device

    JP2013057817A

  • Two-component developer and image forming method using the same

    JP2019008000A

  • Carrier for electrostatic charge image development, electrostatic charge image developer, process cartridge, image forming apparatus, and image forming method

    JP2019159124A