Inkjet head and inkjet printer

By applying a primer and liquid-repellent layer with specific fluorine compound composition and coverage, the nozzle plate achieves superior liquid repellency and abrasion resistance, addressing ink adhesion issues in inkjet heads.

JP7746005B2Active Publication Date: 2025-09-30理想テクノロジーズ株式会社
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Patent Information

Application Number
JP2020191520
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-11-18
Publication Date
2025-09-30
Estimated Expiration
2040-11-18

AI Technical Summary

Technical Problem

Existing inkjet heads face challenges in achieving excellent liquid repellency on nozzle plates, leading to ink adhesion and potential performance issues.

Method used

The nozzle plate is coated with a primer layer and a liquid-repellent layer containing a fluorine compound, with the energy intensity of CF2 groups in the liquid-repellent layer measured by X-ray photoelectron spectroscopy being 50% or more of the theoretical value, ensuring a pinhole-free surface.

Benefits of technology

The nozzle plate exhibits enhanced liquid repellency and abrasion resistance, maintaining optimal performance and reducing ink adhesion, thereby improving the reliability of the inkjet head.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an inkjet head having excellent repellency.SOLUTION: An inkjet head according to an embodiment comprises a nozzle plate provided with a nozzle that discharges ink toward a recording medium. The nozzle plate includes a nozzle plate substrate, a primer layer coating a surface opposing to the recording medium, of the nozzle plate substrate, a repellent layer coating the primer layer and including a fluorine compound. In the repellent layer, energy intensity of a CF2 group that is measured by an X-ray photoelectric spectroscopy is 50% of a theoretical value or higher.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] An embodiment of the present invention relates to an inkjet head and an inkjet printer. [Background technology]

[0002] For example, in an inkjet head that applies pressure to ink using a piezoelectric element to eject ink droplets from nozzles provided in a nozzle plate, the surface of the nozzle plate is made liquid-repellent to prevent ink from adhering to it. To make the surface of the nozzle plate liquid-repellent, a liquid-repellent film is formed on the surface of the nozzle plate substrate by forming a film of a fluorine-based compound by a coating method or a vapor deposition method. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-106024 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of the present invention is to provide an inkjet head having excellent liquid repellency, and an inkjet printer equipped with such an inkjet head. [Means for solving the problem]

[0005] The inkjet head of the embodiment includes a nozzle plate provided with nozzles for ejecting ink toward a recording medium. The nozzle plate includes a nozzle plate substrate, a primer layer covering the surface of the nozzle plate substrate facing the recording medium, and a liquid-repellent layer covering the primer layer and containing a fluorine compound. The energy intensity of the CF2 group in the liquid-repellent layer measured by X-ray photoelectron spectroscopy is 50% or more of the theoretical value. [Brief explanation of the drawings]

[0006] [Figure 1] FIG. 1 is a perspective view showing an inkjet head according to an embodiment. [Figure 2] FIG. 2 is an exploded perspective view showing an actuator substrate, a frame, and a nozzle plate that constitute an inkjet head according to an embodiment. [Figure 3] FIG. 1 is a schematic diagram showing an inkjet printer according to an embodiment. [Figure 4] FIG. 1 is a perspective view showing a main part of an inkjet printer according to an embodiment. [Figure 5] FIG. 2 is a cross-sectional view schematically showing the structure of a nozzle plate according to the embodiment. [Figure 6] 5A to 5C are cross-sectional views schematically illustrating a manufacturing process of a nozzle plate according to an embodiment. [Figure 7] 5A to 5C are cross-sectional views schematically illustrating a manufacturing process of a nozzle plate according to an embodiment. [Figure 8] 5A to 5C are cross-sectional views schematically illustrating a manufacturing process of a nozzle plate according to an embodiment. [Figure 9] 2 is a graph showing XPS spectra obtained for primer layers formed in Examples and Comparative Examples. DETAILED DESCRIPTION OF THE INVENTION

[0007] Hereinafter, an embodiment will be described with reference to the drawings. 1. Inkjet heads and inkjet printers FIG. 1 is a perspective view showing an on-demand inkjet head 1 according to an embodiment, which is mounted on a head carriage of an inkjet printer for use. In the following description, an orthogonal coordinate system consisting of X, Y, and Z axes is used. For convenience, the direction indicated by the arrow in the figure is taken as the positive direction. The X-axis direction corresponds to the printing width direction. The Y-axis direction corresponds to the direction in which the recording medium is transported. The positive Z-axis direction is the direction facing the recording medium.

[0008] Explained generally with reference to FIG. 1, the inkjet head 1 includes an ink manifold 10, an actuator substrate 20, a frame 40, and a nozzle plate 50.

[0009] The actuator substrate 20 has a rectangular shape with its longitudinal direction aligned in the X-axis direction. Examples of materials for the actuator substrate 20 include alumina (Al2O3), silicon nitride (Si3N4), silicon carbide (SiC), aluminum nitride (AlN), and lead zirconate titanate (PZT: Pb(Zr,Ti)O3).

[0010] The actuator substrate 20 is placed on top of the ink manifold 10 so as to close the open end of the ink manifold 10. The ink manifold 10 is connected to the ink cartridge via an ink supply pipe 11 and an ink return pipe 12.

[0011] A frame 40 is attached on the actuator substrate 20. A nozzle plate 50 is attached on the frame 40. A plurality of nozzles N are provided on the nozzle plate 50 at predetermined intervals along the X-axis direction so as to form two rows along the Y-axis.

[0012] 2 is an exploded perspective view of the actuator substrate 20, frame 40, and nozzle plate 50 that constitute the inkjet head 1 according to this embodiment. This inkjet head 1 is a so-called shear mode shared wall side shooter type.

[0013] The actuator substrate 20 is provided with a plurality of ink supply ports 21 spaced apart along the X-axis direction so as to form a row in the center in the Y-axis direction. The actuator substrate 20 is also provided with a plurality of ink discharge ports 22 spaced apart along the X-axis direction so as to form rows in the positive and negative Y-axis directions relative to the row of ink supply ports 21.

[0014] A plurality of actuators 30 are provided between the central row of ink supply ports 21 and one row of ink discharge ports 22. These actuators 30 form a row extending in the X-axis direction. In addition, a plurality of actuators 30 are provided between the central row of ink supply ports 21 and the other row of ink discharge ports 22. These actuators 30 also form a row extending in the X-axis direction.

[0015] Each row of actuators 30 is composed of a first piezoelectric element and a second piezoelectric element stacked on an actuator substrate 20. Examples of materials for the first and second piezoelectric elements include lead zirconate titanate (PZT), lithium niobate (LiNbO3), and lithium tantalate (LiTaO3). The first and second piezoelectric elements are polarized in opposite directions along the thickness direction.

[0016] A laminate consisting of the first and second piezoelectric elements has a plurality of grooves, each extending in the Y-axis direction and aligned in the X-axis direction. These grooves open on the second piezoelectric element side and have a depth greater than the thickness of the second piezoelectric element. Hereinafter, the portion of this laminate sandwiched between adjacent grooves will be referred to as a channel wall. These channel walls each extend in the Y-axis direction and are aligned in the X-axis direction. The groove between two adjacent channel walls is the ink channel through which ink flows.

[0017] Electrodes are formed on the sidewalls and bottom of the ink channel, and these electrodes are connected to a wiring pattern 31 that extends along the Y-axis direction.

[0018] Except for the connection portion with a flexible printed circuit board (described later), a protective film (not shown) is formed on the surface of the actuator substrate 20 including the electrodes and wiring pattern 31. The protective film includes, for example, a multi-layer inorganic insulating film and an organic insulating film.

[0019] The frame 40 has an opening. This opening is smaller than the actuator substrate 20 and larger than the area of ​​the actuator substrate 20 where the ink supply port 21, the actuator 30, and the ink discharge port 22 are provided. The frame 40 is made of, for example, ceramics. The frame 40 is bonded to the actuator substrate 20 by, for example, an adhesive.

[0020] The nozzle plate 50 includes a nozzle plate substrate, a primer layer provided on its medium-facing surface (the ejection surface from which ink is ejected from the nozzles N), and a liquid-repellent layer provided on the primer layer. The nozzle plate substrate is made of a resin film such as a polyimide film. The primer layer and the liquid-repellent layer will be described in detail later.

[0021] The nozzle plate 50 is larger than the opening of the frame 40. The nozzle plate 50 is bonded to the frame 40 by, for example, an adhesive.

[0022] The nozzle plate 50 is provided with a plurality of nozzles N. These nozzles N are arranged in two rows corresponding to the ink channels. The diameter of the nozzles N increases as they move from the recording medium-facing surface toward the ink channels. The dimensions of the nozzles N are set to predetermined values ​​according to the amount of ink ejected. The nozzles N can be formed, for example, by laser processing using an excimer laser.

[0023] The actuator substrate 20, frame 40, and nozzle plate 50 are integrated as shown in FIG. 1 and form a hollow structure. The area surrounded by the actuator substrate 20, frame 40, and nozzle plate 50 is an ink flow chamber. Ink is supplied to the ink flow chamber from the ink manifold 10 through the ink supply port 21, passes through the ink channel, and circulates so that excess ink returns to the ink manifold 10 through the ink discharge port 22. A portion of the ink is ejected from the nozzle N while flowing through the ink channel and is used for printing.

[0024] A flexible printed circuit board 60 is connected to the wiring pattern 31 at a position on the actuator substrate 20 outside the frame 40. A drive circuit 61 that drives the actuator 30 is mounted on the flexible printed circuit board 60.

[0025] The operation of the actuator 30 will be explained below. Here, the operation will be explained focusing on the central ink channel among the three adjacent ink channels. The electrodes corresponding to the three adjacent ink channels are designated A, B, and C. When no electric field is applied in a direction perpendicular to the channel walls, the channel walls are in an upright state.

[0026] For example, a voltage pulse with a higher potential than that of the adjacent electrodes A and C is applied to the central electrode B, generating an electric field perpendicular to the channel wall. This drives the channel wall in a shear mode, deforming the pair of channel walls that sandwich the central ink channel so as to expand the volume of the central ink channel.

[0027] Next, a voltage pulse with a higher potential than the central electrode B is applied to the adjacent electrodes A and C, generating an electric field perpendicular to the channel wall. This drives the channel wall in shear mode, deforming the pair of channel walls sandwiching the central ink channel so as to reduce the volume of the central ink channel. This action applies pressure to the ink in the central ink channel, causing it to be ejected from the nozzle N corresponding to this ink channel and land on a recording medium.

[0028] For example, all the nozzles are divided into three groups, and the above-described drive operation is controlled in a time-division manner to perform three cycles, thereby printing on a recording medium.

[0029] Fig. 3 is a schematic diagram of an inkjet printer 100. The inkjet printer 100 shown in Fig. 3 includes a housing provided with a paper discharge tray 118. Inside the housing, cassettes 1011 and 1012, paper feed rollers 102 and 103, pairs of transport rollers 104 and 105, a pair of registration rollers 106, a transport belt 107, a fan 119, a negative pressure chamber 111, pairs of transport rollers 112, 113 and 114, inkjet heads 1151, 1152, 1153 and 1154, ink cartridges 1161, 1162, 1163 and 1164, and tubes 1171, 1172, 1173 and 1174 are installed.

[0030] Cassettes 1011 and 1012 contain recording media P of different sizes. Paper feed roller 102 or 103 picks up recording media P corresponding to the selected size from cassette 1011 or 1012 and transports it to pairs of transport rollers 104 and 105 and a pair of registration rollers 106.

[0031] The conveyor belt 107 is tensioned by a drive roller 108 and two driven rollers 109. Holes are formed at predetermined intervals on the surface of the conveyor belt 107. A negative pressure chamber 111 connected to a fan 119 is installed inside the conveyor belt 107 to attract the recording medium P to the conveyor belt 107. Pairs of conveyor rollers 112, 113, and 114 are installed downstream of the conveyor belt 107 in the conveying direction. A heater for heating the printing layer formed on the recording medium P can be installed in the conveying path from the conveyor belt 107 to the paper discharge tray 118.

[0032] Four inkjet heads are arranged above the conveyor belt 107, which eject ink onto the recording medium P in accordance with image data. Specifically, an inkjet head 1151 that ejects cyan (C) ink, an inkjet head 1152 that ejects magenta (M) ink, an inkjet head 1153 that ejects yellow (Y) ink, and an inkjet head 1154 that ejects black (Bk) ink are arranged in this order from the upstream side. Each of the inkjet heads 1151, 1152, 1153, and 1154 is the inkjet head 1 described with reference to FIGS. 1 and 2.

[0033] A cyan (C) ink cartridge 1161, a magenta (M) ink cartridge 1162, a yellow (Y) ink cartridge 1163, and a black (Bk) ink cartridge 1164, each containing the corresponding ink, are installed above the inkjet heads 1151, 1152, 1153, and 1154. These cartridges 1161, 1162, 1163, and 1164 are connected to the inkjet heads 1151, 1152, 1153, and 1154 by tubes 1171, 1172, 1173, and 1174, respectively.

[0034] Next, the image forming operation of this inkjet printer 100 will be described. First, an image processing means (not shown) starts image processing for recording, generates an image signal corresponding to the image data, and generates control signals for controlling the operations of the various rollers, the negative pressure chamber 111, and the like.

[0035] Under the control of the image processing means, the paper feed roller 102 or 103 takes out recording media P of the selected size one by one from the cassette 1011 or 1012, and transports them to the pairs of transport rollers 104 and 105 and the pair of registration rollers 106. The pair of registration rollers 106 corrects the skew of the recording media P and transports the recording media P at a predetermined timing.

[0036] The negative pressure chamber 111 sucks in air through holes in the conveyor belt 107. Therefore, the recording medium P, while being adsorbed to the conveyor belt 107, is conveyed successively to positions below the inkjet heads 1151, 1152, 1153, and 1154 as the conveyor belt 107 moves.

[0037] Under the control of the image processing means, the inkjet heads 1151, 1152, 1153, and 1154 eject ink in synchronization with the timing of the conveyance of the recording medium P. In this way, a color image is formed at a desired position on the recording medium P.

[0038] Thereafter, pairs of conveying rollers 112, 113, and 114 discharge the recording medium P on which the image has been formed onto a paper output tray 118. If a heater is installed on the conveying path from the conveying belt 107 to the paper output tray 118, the printed layer formed on the recording medium P may be heated by the heater. Heating by the heater can improve the adhesion of the printed layer to the recording medium P, particularly when the recording medium P is non-permeable.

[0039] Figure 4 shows a perspective view of the main parts of the inkjet printer 100. Figure 4 shows the inkjet head 1, medium holding mechanism 110, head moving mechanism 120, blade moving mechanism 130, and wiping blade 140 described above.

[0040] The medium holding mechanism 110 holds the recording medium P, for example, recording paper, facing the inkjet head 1. The medium holding mechanism 110 also functions as a recording paper moving mechanism that moves the recording medium. The medium holding mechanism 110 includes the conveyor belt 107, drive roller 108, driven roller 109, negative pressure chamber 111, and fan 119 shown in FIG. 3. During printing, the medium holding mechanism 110 moves the recording medium P in a direction parallel to the printing surface of the recording medium P while it faces the inkjet head 1. During this time, the inkjet head 1 ejects ink droplets from its nozzles to print on the recording medium P.

[0041] The head moving mechanism 120 moves the inkjet head 1 to a printing position during printing, and to a cleaning position during cleaning.

[0042] The wiping blade 140 rubs the surface of the nozzle plate of the inkjet head 1 that faces the recording medium, i.e., the recording medium facing surface, to remove any adhering matter from the recording medium facing surface. Here, the adhering matter is, for example, ink and dust and other dirt.

[0043] The blade movement mechanism 130 moves the wiping blade 140. Specifically, after the head movement mechanism 120 moves the inkjet head 1 to the cleaning position, the blade movement mechanism 130 moves the wiping blade 140 over the recording medium-facing surface of the nozzle plate 50 while pressing the wiping blade 140 against the recording medium-facing surface of the nozzle plate 50. In this way, ink and other adhering matter adhering to the recording medium-facing surface of the nozzle plate 50 is removed. The wiping blade 140 and the blade moving mechanism 130 may be omitted.

[0044] 2.Nozzle plate In the inkjet head 1 described above, liquid repellency is imparted to the medium-facing surface of the nozzle plate 50. To impart liquid repellency, a primer layer and a liquid repellent layer are provided on the medium-facing surface of the nozzle plate substrate. This will be described with reference to FIG. 5.

[0045] Fig. 5 is a cross-sectional view schematically showing the structure of the nozzle plate 50 of Fig. 1 and Fig. 2. The nozzle plate 50 includes the nozzle plate substrate 51, the primer layer 52, and the liquid-repellent layer 53, as described above.

[0046] The primer layer 52 is provided on the surface of the nozzle plate substrate 51 facing the recording medium P. The primer layer 52 is preferably made of a monomolecular film of a primer agent. More preferably, the primer layer 52 is made of a monomolecular film of a primer agent containing silicon atoms and carbon atoms.

[0047] The primer agent includes, for example, first and second reactive functional groups, a carbon skeleton, and an alkoxysilyl group.

[0048] The first reactive functional group reacts with a functional group present on the surface of the nozzle plate substrate 51, thereby bonding the primer agent to the nozzle plate substrate 51. The first reactive functional group is, for example, a hydroxyl group, an epoxy group, an amino group, a methacryl group, an unsaturated hydrocarbon group such as a vinyl group, or a mercapto group. The functional group present on the surface of the nozzle plate substrate 51 is, for example, a hydroxyl group, an ester bond, an amino group, or a thiol group.

[0049] The second reactive functional group reacts with the fluorine compound used to form the liquid-repellent layer 53, thereby bonding the fluorine compound to the primer agent. The fluorine compound will be described later. The second reactive functional group is, for example, a hydroxyl group or an alkoxy group such as a methoxy group or an ethoxy group.

[0050] The carbon skeleton connects the first reactive functional group and the second reactive functional group. The carbon skeleton contains one or more carbon atoms. The number of carbon atoms in the carbon skeleton is preferably in the range of 4 to 30, more preferably in the range of 4 to 22. The carbon skeleton preferably further contains one or more fluorine atoms. When the carbon skeleton contains fluorine atoms, excellent liquid repellency is achieved.

[0051] The alkoxysilyl group is linked to a carbon skeleton. Hydrolysis of the alkoxysilyl group generates a silanol group. By causing dehydration condensation of the silanol groups between adjacent molecules of the primer agent on the nozzle plate substrate 51, intermolecular bonds can be formed in the primer agent. In this manner, it is preferable that the molecules of the primer agent are bonded to each other. According to one example, adjacent molecules of the primer agent on the nozzle plate substrate 51 are bonded to each other by a siloxane bond (Si-O-Si). This allows the primer agent to form bonds that are approximately parallel to the medium-facing surface of the nozzle plate substrate 51.

[0052] Of the silanol groups generated by hydrolysis, those not used for intermolecular bonding of the primer agent can be used for bonding between the primer agent and the fluorine compound.

[0053] As the primer agent, for example, a compound represented by the following general formula (1) can be used.

[0054] [ka]

[0055] In general formula (1), n ​​is a natural number from 1 to 10. In general formula (1), R1 and R2 are the first and second reactive functional groups described above, respectively. The compound represented by general formula (1) contains the first and second reactive functional groups, a carbon skeleton, and an alkoxysilyl group.

[0056] In general formula (1), the alkoxysilyl group is a trimethoxysilyl group, but the alkoxysilyl group may be a functional group such as a triethoxysilyl group. Furthermore, in general formula (1), the number of CF2 groups contained in the carbon skeleton is 2, but the number of CF2 groups may be 1, or 3 or more. Furthermore, the number of carbon atoms contained in the repeating unit of the carbon skeleton is 2, but the number of carbon atoms may be 1, or 3 or more.

[0057] The primer layer has a thickness of, for example, 0.7 nm to 1 nm.

[0058] The liquid-repellent layer 53 is provided on the primer layer 52. The liquid-repellent layer 53 contains a fluorine compound. The liquid-repellent layer 53 is preferably made of a monomolecular film of a linear fluorine compound. The linear fluorine compound is a linear molecule having a perfluoroalkyl group on the surface side as one end group and the other end group bonded to the primer layer 52.

[0059] The liquid-repellent layer 53 can be formed using, for example, a straight-chain fluorine compound having one end group which is a perfluoroalkyl group and the other end group which is a third reactive functional group.

[0060] The perfluoroalkyl group is linear. Perfluoroalkyl group (CF3(CF2) n The number of carbon atoms in the -) can be selected within the range of 4 or less (C1 to C4). The perfluoroalkyl group preferably stands upright along the direction perpendicular to the surface of the nozzle plate substrate 51. Increasing the number of carbon atoms in the perfluoroalkyl group makes it easier to make the perfluoroalkyl group stand upright, but this can have adverse effects on the human body, such as carcinogenicity.

[0061] The third reactive functional group reacts with the second reactive functional group to bond the linear fluorine compound to the primer agent. The third reactive functional group is, for example, a hydroxyl group or an alkoxy group such as a methoxy group or an ethoxy group. In addition, the third reactive functional group can also bond the linear fluorine compound to the primer agent by reacting with silanol groups that are not used for intermolecular bonding among the silanol groups generated by hydrolysis of the alkoxysilyl group.

[0062] The linear fluorine compound has, for example, a spacer linking group that links the perfluoroalkyl group and the third reactive functional group. The presence of the spacer linking group is advantageous for the perfluoroalkyl group to assume an upright structure along the direction perpendicular to the surface of the nozzle plate substrate 51. The spacer linking group is, for example, a perfluoropolyether group.

[0063] As the linear fluorine compound, for example, a compound represented by the following general formula (2) can be used.

[0064] [ka]

[0065] In general formula (2), p is a natural number from 1 to 50, and R3 is a third reactive functional group.

[0066] The liquid-repellent layer 53 has a thickness of, for example, 9 nm to 10 nm.

[0067] As described below, in this embodiment, prior to the step of forming the liquid-repellent layer, a step of filling pinholes generated in the primer layer with a primer agent is performed. The liquid-repellent layer thus obtained has an energy intensity of CF2 groups measured by X-ray photoelectron spectroscopy (XPS) that is 50% or more of the theoretical value. Here, the "theoretical value" refers to the energy intensity of CF2 groups obtained by XPS measurement of a liquid-repellent layer without pinholes. A "liquid-repellent layer without pinholes" can be produced by filling pinholes that typically occur when a primer agent solution is applied to form a primer layer with a primer agent solution of the same composition, forming a pinhole-free primer layer, and then providing a liquid-repellent layer on this primer layer. In this specification, "energy intensity of CF2 groups" refers to the peak area of ​​the CF2 groups.

[0068] If the liquid-repellent layer is formed without filling the pinholes, it cannot be formed in areas where the primer layer is not present (i.e., pinholes). In this case, the energy intensity of the CF2 group measured by X-ray photoelectron spectroscopy of the liquid-repellent layer is 40% or less of the theoretical value. In contrast, if the liquid-repellent layer is formed after filling the pinholes, the liquid-repellent layer can be formed over the entire surface of the primer layer, which is free of pinholes. In this case, the energy intensity of the liquid-repellent layer measured by X-ray photoelectron spectroscopy can be 50% or more of the theoretical value, preferably 85% or more of the theoretical value, and most preferably 100% of the theoretical value.

[0069] The closer the energy intensity of the CF2 group measured by X-ray photoelectron spectroscopy (XPS) of the liquid-repellent layer is to the theoretical value of 100%, the fewer pinholes there are in the liquid-repellent layer, approaching zero. Because the liquid-repellent layer cannot exhibit liquid-repellent properties in the pinhole areas, the fewer pinholes there are in the liquid-repellent layer, the better the liquid-repellent performance the layer can exhibit.

[0070] The fluorine compound constituting the liquid-repellent layer can be reacted with the entire surface of the primer layer. That is, if there are no pinholes in the primer layer, a liquid-repellent layer substantially free of pinholes can be obtained. On the other hand, if there are pinholes in the primer layer, pinholes also appear in the liquid-repellent layer at the positions of these pinholes. That is, the total area of ​​the pinhole openings in the liquid-repellent layer is equal to the total area of ​​the pinhole openings in the primer layer.

[0071] 3. Manufacturing method of nozzle plate 5 can be manufactured, for example, as follows. That is, the manufacturing method of the nozzle plate 50 can include the following steps: supplying a first primer agent onto one surface of a nozzle plate substrate to form a first primer layer having openings (i.e., pinholes); introducing a protecting group into the first primer layer; supplying a second primer agent onto the first primer layer into which the protecting group has been introduced, to form a second primer layer that covers the surface at the position of the opening; removing the protecting group from the first primer layer after forming the second primer layer; and After removing the protecting groups, a liquid-repellent layer containing a fluorine compound is formed on the first primer layer and the second primer layer.

[0072] Each step will be described below with reference to Figs. 6 to 8. Figs. 6 to 8 are cross-sectional views that schematically show the steps of manufacturing a nozzle plate. Fig. 6 shows a state in which a first primer layer 521 has been formed on a nozzle plate substrate 51. Fig. 7 shows a state in which a first primer layer 521 and a second primer layer 522 have been formed on the nozzle plate substrate 51. Fig. 8 shows a state in which a liquid-repellent layer 53 has been formed on a primer layer consisting of the first primer layer 521 and the second primer layer 522.

[0073] In the following description, as an example, the "nozzle plate substrate 51" is made of polyimide. In the following description, as an example, the "first primer agent" and the "second primer agent" each include a first reactive functional group that reacts with a functional group on the surface of the nozzle plate substrate 51, a second reactive functional group that reacts with a fluorine compound contained in the liquid-repellent layer 53, a carbon skeleton, and an alkoxysilyl group. In the following description, as an example, the "fluorine compound" is a linear molecule that includes a perfluoroalkyl group as one end group and a third reactive functional group that reacts with the first primer agent and the second primer agent as the other end group.

[0074] (Preparation of nozzle plate substrate) First, a nozzle plate substrate 51 made of polyimide is prepared. Of the surfaces of the nozzle plate substrate 51, the surface facing the recording medium P may have almost no functional groups (e.g., hydroxyl groups) necessary for bonding with the primer agent. In such cases, it is preferable to perform the following pretreatment on the nozzle plate substrate 51 prior to forming the primer layer 52.

[0075] For example, the surface of the nozzle plate substrate 51 is subjected to ion plasma treatment in an argon-oxygen mixed gas to modify the surface. The ion plasma treatment is performed, for example, as follows: The nozzle plate substrate 51 is placed in a vacuum chamber, and the air in the chamber is evacuated. Then, the atmosphere surrounding the nozzle plate substrate 51 is switched to an argon-oxygen mixed gas, and then plasma is generated.

[0076] By performing ion plasma treatment in an atmosphere containing oxygen, a ring-opening reaction occurs in the polyimide on the surface of the nozzle plate substrate 51, modifying the surface with hydroxyl groups. In addition, by performing ion plasma treatment in an atmosphere containing argon, dust adhering to the nozzle plate substrate 51 is removed.

[0077] The ion plasma treatment is preferably carried out in an argon-oxygen mixed gas with an oxygen concentration of 50% by volume or less, and more preferably in an argon-oxygen mixed gas with an oxygen concentration in the range of 20 to 50% by volume. If the oxygen concentration is too high, the surface of the nozzle plate substrate 51 may be damaged and may become rough. If the surface of the nozzle plate substrate 51 becomes rough, there is a risk that the primer agent may not bond properly.

[0078] The ion plasma treatment is preferably carried out for 100 seconds or more, and more preferably for 200 seconds or more. If the plasma irradiation time is too short, there is a risk that the surface of the nozzle plate substrate 51 will not be sufficiently modified.

[0079] (Formation of the first primer layer) Next, a solution containing a first primer agent is applied to the surface of the nozzle plate substrate 51. For example, a solution obtained by dissolving the first primer agent in an organic solvent can be used as the solution containing the first primer agent. For example, the first primer agent contains a first reactive functional group that reacts with the functional group on the surface of the nozzle plate substrate 51, a second reactive functional group that reacts with the fluorine compound contained in the liquid-repellent layer 53, a carbon skeleton, and an alkoxysilyl group, and the "primer agent" described above can be used. The solution can be applied using a conventional method such as spraying, spin coating, or blade coating.

[0080] Next, the laminate including the coating film containing the first primer agent and the nozzle plate substrate 51 is heated. In this way, the first primer agent is bonded to the polyimide via the first reactive functional group, and the coating film is dried. Heating is performed, for example, at 200°C for 15 minutes.

[0081] Next, the alkoxysilyl groups of the first primer agent are hydrolyzed. When the alkoxysilyl groups of the first primer agent are hydrolyzed, silanol groups are generated. Then, dehydration condensation of the silanol groups occurs between adjacent molecules of the first primer agent on the nozzle plate substrate 51. This forms intermolecular bonds of the first primer agent.

[0082] 6, the first primer layer 521 is formed on the nozzle plate substrate 51. The first primer layer 521 has pinholes 520.

[0083] (Introduction of a protecting group) After the first primer layer 521 is formed, a protecting group is introduced into the first primer layer 521. Specifically, a protecting group is introduced into the second reactive functional group of the first primer agent. The introduction of the protecting group can be performed, for example, by supplying an alcohol to the first primer layer 521 and substituting an alkoxy group as a protecting group for the second reactive functional group of the first primer agent. Examples of alcohol include methanol, ethanol, and isopropanol. The introduction of the protecting group can prevent the second primer agent used in the subsequent step from bonding with the first primer agent.

[0084] (Formation of second primer layer) A second primer agent is supplied onto the first primer layer 521 into which the protective group has been introduced, to form a second primer layer 522 that covers the surface of the nozzle plate substrate 51 at the position of the pinhole 520 (see FIG. 7).

[0085] As an example, the second primer agent includes a first reactive functional group that reacts with the functional group on the surface of the nozzle plate substrate 51, a second reactive functional group that reacts with the fluorine compound contained in the liquid-repellent layer 53, a carbon skeleton, and an alkoxysilyl group, and the "primer agent" described above can be used.

[0086] The second primer agent may be the same compound as the first primer agent, or a different compound from the first primer agent. However, if a different compound from the first primer agent is used as the second primer agent, a structural difference (e.g., difference in thickness) may occur between the first primer layer 521 and the second primer layer 522, which may adversely affect the formation of the liquid-repellent layer 53. Therefore, it is preferable to use the same compound as the first primer agent for the second primer agent.

[0087] The second primer layer 522 can be formed by the same process as that for forming the first primer layer 521. That is, by the same process as that for forming the first primer layer 521, a solution containing a second primer agent is applied, heated and dried, and then silanol groups are generated and dehydration condensation is carried out.

[0088] The second primer agent cannot react with the first primer layer 521 having the protective group introduced therein, but can react only with the surface of the nozzle plate substrate 51 exposed at the position of the pinhole 520. As a result, as shown in Fig. 7, the second primer layer 522 is not formed on the first primer layer 521, but is selectively formed on the surface of the nozzle plate substrate 51 exposed at the position of the pinhole 520.

[0089] (Removal of Protecting Groups) After the second primer layer 522 is formed, the protecting groups are removed from the first primer layer 521. The protecting groups can be removed by, for example, heat treatment, oxygen plasma treatment, or ultraviolet irradiation. This allows the first primer agent to bond with the fluorine compound contained in the liquid-repellent layer 53 via the second reactive functional group.

[0090] When the first primer agent and the second primer agent are the same compound, removal of the protecting groups results in the first primer layer 521 and the second primer layer 522 having the same composition and being indistinguishable from each other. In this case, the first primer layer 521 and the second primer layer 522 can be integrated to form the single primer layer 52 shown in FIG. 5.

[0091] (Formation of liquid-repellent layer) Next, a solution containing a fluorine compound is applied to the surfaces of the first primer layer 521 and the second primer layer 522 to form a liquid-repellent layer 53 (see FIG. 8).

[0092] The solution containing a fluorine compound can be, for example, a solution in which a fluorine compound is dissolved in an organic solvent. The fluorine compound is, for example, a linear molecule containing a perfluoroalkyl group as one end group and a third reactive functional group that reacts with the first primer agent and the second primer agent as the other end group, and the "linear fluorine compound" described above can be used. The solution containing the linear fluorine compound can be applied using the same method as the application of the solution containing the first primer agent.

[0093] Next, the laminate including the coating film containing the linear fluorine compound, the first primer layer 521, the second primer layer 522, and the nozzle plate substrate 51 is heated. In this manner, a reaction occurs between the linear fluorine compound and the first primer agent, and between the linear fluorine compound and the second primer agent, and the linear fluorine compound is bonded to the surfaces of the first primer layer 521 and the second primer layer 522 via the third reactive functional group. This allows a monomolecular film made of the linear fluorine compound to be formed as the liquid-repellent layer 53. Heating is performed, for example, at 200°C for 15 minutes.

[0094] In this way, as shown in FIG. 8, the liquid-repellent layer 53 is formed on the primer layer consisting of the first primer layer 521 and the second primer layer 522.

[0095] According to the above-described method, the second primer layer 522 is not formed on the first primer layer 521, but can be selectively formed only in the portion of the pinhole 520 (i.e., the missing portion of the first primer layer 521) (see FIG. 7). This allows the formation of a monomolecular film composed of the first primer agent and the second primer agent as the primer layer. Furthermore, as described above, the fluorine compound constituting the liquid-repellent layer can be reacted with the entire surface of the primer layer composed of the first primer layer 521 and the second primer layer 522. Therefore, if there are no pinholes in the primer layer, it is possible to form a liquid-repellent layer 53 that is substantially free of pinholes (see FIG. 8).

[0096] 4.Effects The nozzle plate of the present embodiment described above has a liquid-repellent layer with a small number of pinholes, and therefore has excellent liquid-repellent properties. Therefore, an inkjet head equipped with the nozzle plate described above also has excellent liquid-repellent properties.

[0097] When the primer layer and the liquid-repellent layer are each composed of a monolayer, the primer agent molecules can be densely and systematically arranged on the nozzle plate substrate, and the fluorine compound molecules can be densely and systematically arranged on top of that. This allows for better liquid repellency. Furthermore, when the primer layer and the liquid-repellent layer are each composed of a monolayer, the adhesion between the liquid-repellent layer and the nozzle plate substrate can be improved, resulting in better abrasion resistance. Abrasion resistance refers to the property of being less susceptible to deterioration of liquid repellency due to abrasion using a wiping blade 140 or the like. [Example]

[0098] Examples and comparative examples will be described below.

[0099] (Example) In this example, a nozzle plate having a primer layer and a liquid-repellent layer was manufactured. The primer layer and the liquid-repellent layer were formed by the following method.

[0100] A polyimide film was prepared as the nozzle plate substrate. This nozzle plate substrate was subjected to plasma treatment in a reduced pressure atmosphere containing an argon-oxygen mixed gas. This caused a ring-opening reaction in the polyimide on the substrate surface, resulting in the addition of hydroxyl groups to the surface.

[0101] The primer solution was applied to the surface of the nozzle plate substrate by blade coating. The primer used was represented by the general formula (1) above, where R1 is a hydroxyl group, R2 is a hydroxyl group, and n is 10.

[0102] The coating was heated at 200°C for 15 minutes. This allowed the primer to bond to the polyimide, and the coating was dried. Furthermore, the alkoxysilyl groups of the primer were hydrolyzed, causing dehydration condensation of silanol groups between adjacent primer molecules. This resulted in the formation of a monomolecular film of the primer as the first primer layer.

[0103] This first primer layer had pinholes. Therefore, isopropanol was supplied to the first primer layer, and the reactive functional groups of the primer agent were replaced with isopropoxy groups as protecting groups. Next, the above-mentioned solution of primer agent was applied onto the first primer layer using a blade coating method, and the same process as above was carried out. Because the surface of the first primer layer had protecting groups, the primer agent did not react with the first primer layer, but rather with the substrate surface exposed at the pinholes. In this way, a monolayer of primer agent was formed as a second primer layer at the pinholes.

[0104] Next, the first and second primer layers were subjected to plasma treatment in a reduced pressure atmosphere containing an argon-oxygen mixed gas. This removed the protective groups from the first primer layer and introduced hydroxyl groups onto their surfaces. This resulted in the formation of a primer layer consisting of the first and second primer layers. The primer layer thus obtained was free of pinholes.

[0105] Thereafter, a solution of a fluorine compound was applied onto the first and second primer layers by blade coating. The fluorine compound used was one represented by the above general formula (2), in which R3 is a hydroxyl group and p is 1.

[0106] This coating film was heated at 200°C for 15 minutes. In this way, one end group of the fluorine compound reacted with the reactive functional groups of the first and second primer layers. As a result, a monomolecular film made of the fluorine compound was formed as a liquid-repellent layer. No pinholes were present in this liquid-repellent layer.

[0107] (Comparative Example) A nozzle plate was produced in the same manner as in the above Example, except that the second primer layer was not formed. Pinholes were present in the primer layer and liquid-repellent layer of this nozzle plate.

[0108] (XPS analysis) XPS spectra were measured for the primer layers formed in the examples and the comparative examples, and the results are shown in FIG.

[0109] The energy intensity of the CF2 group in the primer layer of the example was the same as the theoretical value, and the energy intensity of the CF2 group in the primer layer of the comparative example was 38% of the theoretical value.

[0110] When XPS spectra were measured for the liquid-repellent layers formed in the examples and the comparative examples, similar results were obtained regarding the relationship between the energy intensity of the CF2 group.

[0111] The present invention is not limited to the above-described embodiments, and various modifications can be made in the implementation stage without departing from the spirit of the invention. Furthermore, the embodiments may be implemented in appropriate combinations, in which case the combined effects can be obtained. Furthermore, the above-described embodiments include various inventions, and various inventions can be extracted by combining selected elements from the disclosed elements. For example, if the problem can be solved and the desired effect can be obtained even if some elements are deleted from all elements shown in the embodiments, the configuration from which these elements are deleted can be extracted as an invention. The following claims as originally filed are appended as embodiments. [1] A nozzle plate having nozzles for ejecting ink toward a recording medium, The nozzle plate is a nozzle plate substrate; a primer layer covering a surface of the nozzle plate substrate facing the recording medium; A liquid-repellent layer containing a fluorine compound is formed by coating the primer layer. Including, The liquid-repellent layer has a CF measured by X-ray photoelectron spectroscopy. 2 An inkjet head in which the energy intensity of the base is 50% or more of the theoretical value. [2] The inkjet head according to [1], wherein the primer layer is a monomolecular film of a primer agent containing silicon atoms and carbon atoms. [3] The inkjet head according to [1] or [2], wherein the liquid-repellent layer is a monomolecular film of a linear fluorine compound having a perfluoroalkyl group as one end group on the surface side and the other end group bonded to the primer layer. [4] An inkjet head according to any one of [1] to [3]; a medium holding mechanism that holds the recording medium facing the inkjet head; Inkjet printer with. [5] The inkjet printer according to [4], further comprising a wiping blade that rubs the surface of the nozzle plate that faces the recording medium to remove any adhering matter from the surface of the nozzle plate that faces the recording medium. [Explanation of symbols]

[0112] 1...inkjet head, 10...ink manifold, 11...ink supply pipe, 12...ink return pipe, 20...actuator substrate, 21...ink supply port, 22...ink discharge port, 30...actuator, 31...wiring pattern, 40...frame, 50...nozzle plate, N...nozzle, 51...nozzle plate substrate, 52...primer layer, 520...pinhole, 521...first primer layer, 522...second primer layer, 53...liquid-repellent layer, 60...flexible printed circuit board, 61...drive circuit, 100...inkjet printer, 1011...cassette, 1012...cassette, 102...paper feed roller, 103...paper feed roller, 104...pair of conveying rollers, 105...pair of conveying rollers, 106...pair of registration rollers, 107 ...conveyor belt, 108...drive roller, 109...driven roller, 111...negative pressure chamber, 112, pair of conveying rollers, 113...pair of conveying rollers, 114...pair of conveying rollers, 1151...inkjet head, 1152...inkjet head, 1153...inkjet head, 1154...inkjet head, 1161...ink cartridge, 1162...ink cartridge, 1163...ink cartridge, 1164...ink cartridge, 1171...tube, 1172...tube, 1173...tube, 1174...tube, 118...output tray, 119...fan, P...recording medium, 110...medium holding mechanism, 120...head moving mechanism, 130...blade moving mechanism, 140...wiping blade.

Claims

1. a nozzle plate provided with nozzles for ejecting ink toward a recording medium; The nozzle plate is a nozzle plate substrate; a primer layer covering a surface of the nozzle plate substrate facing the recording medium; A liquid-repellent layer containing a fluorine compound is formed by coating the primer layer. Including, the nozzle plate substrate is made of a resin film, The liquid-repellent layer has a CF 2 The energy intensity of the group is 50% or more of the theoretical value, the primer layer is a monomolecular film of a primer agent, The primer agent is a first reactive functional group selected from the group consisting of a hydroxyl group, an epoxy group, an amino group, a methacryl group, an unsaturated hydrocarbon group, and a mercapto group; a second reactive functional group selected from the group consisting of a hydroxyl group and an alkoxy group; a carbon skeleton connecting the first reactive functional group and the second reactive functional group; an alkoxysilyl group linked to the carbon skeleton; Including, the first reactive functional group reacts with a functional group present on the surface of the nozzle plate substrate, thereby bonding the primer agent to the nozzle plate substrate; The molecules of the primer agent are bonded to each other by siloxane bonds, The liquid-repellent layer is a monomolecular film of a straight-chain fluorine compound having a perfluoroalkyl group as one end group on the surface side and the other end group bonded to the primer layer. Inkjet head.

2. The inkjet head according to claim 1; a medium holding mechanism that holds the recording medium facing the inkjet head; Inkjet printer with.

3. 3. The inkjet printer according to claim 2, further comprising a wiping blade that rubs the surface of the nozzle plate that faces the recording medium to remove deposits from the surface of the nozzle plate that faces the recording medium.

Citation Information

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