Pattern forming method and inkjet printing device
The inkjet printing method addresses streaks and unevenness by controlling ink droplet placement and viscosity, ensuring uniformity and adhesion on diverse substrates, enhancing precision and performance.
Patent Information
- Application Number
- JP2022081956
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-03
- Filing Date
- 2022-05-19
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2041-08-05
AI Technical Summary
Existing inkjet printing methods for forming patterns on electronic devices suffer from streaks and mottled unevenness, especially when using functional materials, leading to issues with uniformity and adhesion, particularly on substrates with varying wettability and uneven surfaces.
A pattern formation method using an inkjet printing system that controls the landing positions and amounts of ink droplets to avoid fixed periodicity and uniformity, employing a multi-pass method with random droplet placement and controlled ink viscosity, ensuring uniform insulating and conductive properties.
The method achieves high precision and eliminates streaks and mottled unevenness, providing uniform coating films with good adhesion and consistent insulation or conductivity, even on substrates with varying wettability and surface irregularities.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a pattern forming method, and more particularly to a method for forming a pattern by inkjet printing, which is highly precise and free of streaks and mottled unevenness. [Background technology]
[0002] BACKGROUND ART In recent years, research and development has been underway into technology for forming patterns on electronic devices by inkjet printing methods (hereinafter also simply referred to as "inkjet methods") using inks containing functional materials.
[0003] Patent document 1 discloses a method for manufacturing a multilayer wiring board having an interlayer insulating film using a droplet ejection method (inkjet method), but problems arise such as the occurrence of bulges depending on the combination of substrate and ink, and when forming a pattern across different substrates, differences in the wettability of each substrate to the ink cause the ink to flow to the substrate with higher wettability.
[0004] Therefore, Patent Document 2 discloses a method of applying droplets of insulating film forming material at different distances from the periphery of the substrate based on the wettability of the underlying surface. However, if the wettability of each underlying surface differs significantly, the ink may run. Furthermore, when forming a pattern across an uneven substrate, the ink may run.
[0005] In response to this, in Patent Document 3, which discloses the inventor's invention, the above problem is solved by specifying the viscosity of the ink at the time of ejection and after landing when forming an insulating layer pattern using an inkjet method.However, since the insulating layer forming ink used has a phase change mechanism and has high dot fixation after landing, it is believed that there is room for further improvement in the occurrence of streaky unevenness in the scanning direction.
[0006] Furthermore, Patent Document 4 describes that in an inkjet one-pass printer, by grouping adjacent pixels into one group and adjusting the amount of droplets ejected at one pixel within the group, it is possible to reduce the number of pixels ejected within one group and suppress gloss streaks in the transport direction. However, our research has shown that when this method is applied to a multi-pass printer, streaks appear in the direction perpendicular to the transport direction.
[0007] When high resolution is required for printing highly detailed patterns, the multi-pass method is mainly used, but the time between passes is long when printing with the multi-pass method, which makes it prone to streaky unevenness. The streaky unevenness not only affects the appearance, but also becomes a major problem when forming an insulating film or a conductive film, since it leads to uneven insulation or uneven conductivity.
[0008] Furthermore, when forming a pattern on a convex portion of a substrate, there is a problem in that the pattern does not sufficiently cover the stepped portion, resulting in insulation or poor conductivity. [Prior art documents] [Patent documents]
[0009] [Patent Document 1] Japanese Patent Application Laid-Open No. 2003-309369 [Patent Document 2] Japanese Patent Application Laid-Open No. 2010-231287 [Patent Document 3] International Publication No. 2015 / 002316 [Patent Document 4] Japanese Patent Application Laid-Open No. 2012-162057 Summary of the Invention [Problem to be solved by the invention]
[0010] The present invention has been made in consideration of the above problems and circumstances, and the problem to be solved is to provide a pattern formation method using an inkjet printing system that is highly precise and free of streaks and mottled unevenness, that has uniform insulating and conductive properties even when using ink containing functional materials such as insulators and conductors, and that achieves good adhesion of the coating film. [Means for solving the problem]
[0011] In order to solve the above-mentioned problems, the inventors of the present invention have investigated the causes of the above-mentioned problems and have discovered that the causes of streaks and mottled unevenness are related to the periodicity or randomness of the positions at which ink droplets land, which led to the present invention. That is, the above-mentioned problems of the present invention are solved by the following means.
[0012] 1. A pattern formation method using an inkjet printing method based on image data of a pattern, In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The amount of ink used to form a coating of dots constituting a pattern formed on the substrate is determined in accordance with the gradation or density of each pixel constituting the image data of the pattern, The dots are controlled so that they do not have a fixed periodicity with the adjacent dots, and the entire pattern coating is not uniform. A pattern forming method comprising:
[0014] 2 A pattern forming method using an inkjet printing method based on image data of a pattern, In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and The positions of the dots where the droplets land are controlled so as not to have a constant periodicity in the main scanning direction and the sub-scanning direction of the ink ejection device and not to be continuous in the main scanning direction. death, The amount of ink used to form the coating of dots constituting the pattern formed on the substrate corresponds to the gradation or density of each pixel constituting the image data of the pattern, does not have a constant periodicity with adjacent dots, and is controlled so that the coating of the pattern as a whole is not uniform. A pattern forming method comprising: 3 The ink droplets used to form the coating of dots constituting the pattern formed on the substrate land multiple times, and The positions of the dots where the droplets land are controlled so as not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity. 2. The pattern forming method according to claim 1,
[0015] 4 The image data of the pattern is divided into a plurality of parts so that the pixels do not overlap when printed in layers, and so that the positions of the dots where the droplets land do not have a constant periodicity in the main scanning direction and sub-scanning direction of the ink ejection device and are not continuous in the main scanning direction; The divided image data is printed in a sequentially overlapping manner. The first feature is 2 Item 1. The pattern forming method according to item 1. 5 In some of the pixels that constitute the image data of the pattern, droplets of the ink are not ejected. The first or second item is characterized by the above. 3 Item 1. The pattern forming method according to item 1.
[0016] 6 The ink ejection device moves back and forth in the main scanning direction, Ink droplets are ejected on both the forward and backward passes. The first feature is 2 Section or Article 4 Item 1. The pattern forming method according to item 1.
[0017] 7The ink ejection device moves relatively in a combination of forward and reverse directions with respect to the sub-scanning direction. The first feature is 2 Section or Article 4 Item 1. The pattern forming method according to item 1.
[0019] 8 The amount of ink per dot forming the edge of the patterned portion on the substrate at the boundary between the patterned portion and the non-patterned portion is controlled to be approximately the same. The first to second items are characterized by the 4 Item 1. The pattern forming method according to any one of items 1 to 5.
[0020] 9 For a substrate with a convex portion, the amount of ink per dot forming the edge of the convex portion is controlled to be approximately the same. The first to second items are characterized by the 4 Item 1. The pattern forming method according to any one of items 1 to 5.
[0021] 1 0 For a substrate with a convex portion, the amount of ink liquid per dot is controlled so that the dots forming the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion are greater than the dots forming the edge of the convex portion. The first to second items are characterized by the 4 Item 1. The pattern forming method according to any one of items 1 to 5.
[0022] 1 1 For a substrate with a convex portion, the amount of liquid in the dots that form the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion is controlled so that it changes continuously from the surface in contact with the convex portion to the surface toward the outside. The first to second items are characterized by the 4 Item 1. The pattern forming method according to any one of items 1 to 5. 12. A pattern forming method using an inkjet printing method based on image data of a pattern, In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; The amount of ink per dot forming the edge inside the patterned portion at the boundary between the patterned portion and the non-patterned portion formed on the substrate is controlled to be approximately the same. A pattern forming method comprising: 13. A pattern forming method using an inkjet printing method based on image data of a pattern, In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; For a substrate with a convex portion, the amount of ink per dot forming the edge of the convex portion is controlled to be approximately the same. A pattern forming method comprising: 14. A pattern forming method using an inkjet printing method based on image data of a pattern, In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; For a substrate with a convex portion, the amount of ink liquid per dot is controlled so that the dots forming the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion are greater than the dots forming the edge of the convex portion. A pattern forming method comprising: 15. A pattern forming method using an inkjet printing method based on image data of a pattern, In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; For a substrate having a convex portion, the amount of liquid in the dots that form the outer edge surface of the boundary between the inside and outside of the bottom surface of the convex portion is controlled so as to change continuously from the surface in contact with the convex portion to the surface toward the outside. A pattern forming method comprising:
[0023] 1 6 The average thickness of the coating film of the dots that make up the pattern is controlled to be 15 μm or more. The first to second items are characterized by the 4 term and paragraphs 12 to 15 1. The pattern forming method according to any one of claims 1 to 8.
[0024] 1 7 The amount of ink to be deposited to form the coating of each dot constituting the pattern is changed in multiple ways. The first to second items are characterized by the 4 term and paragraphs 12 to 15 1. The pattern forming method according to any one of claims 1 to 8.
[0025] 1 8 The ink is either a hot melt type, a gel type, or a thixotropic type. The first to second items are characterized by the 4 term and paragraphs 12 to 15 1. The pattern forming method according to any one of claims 1 to 8.
[0026] 1 9 The ink used is a solder resist ink. thing of Characteristic items 1 to 3 4 term and paragraphs 12 to 15 1. The pattern forming method according to any one of claims 1 to 8.
[0027] 20 An inkjet printing device that forms a pattern based on image data of the pattern, Sections 1 to 5 4 term and paragraphs 12 to 15 A pattern is formed by the pattern forming method according to any one of claims 1 to 4. 1. An inkjet printing apparatus comprising: [Effects of the Invention]
[0028] The above-described means of the present invention can provide a pattern formation method using an inkjet system that is highly precise and free of streaks and mottled unevenness, that has uniform insulating and conductive properties even when ink containing functional materials such as insulators and conductors is used, and that provides good adhesion of the coating film.
[0029] The mechanism by which the effects of the present invention are manifested or the mechanism of action is not clear, but is speculated as follows. By using ink in which the ratio η2 / η1, where η1 is the viscosity at the temperature when the ink is ejected and η2 is the viscosity at the temperature when the ink lands, is 100 or more, it is possible to achieve stable ink ejection, for example, and to apply the ink to a substrate with high precision. Furthermore, it is believed that the ink applied to the substrate can more easily pin the contact line to the substrate quickly, preventing ink flow, and thus suppressing the occurrence of bulges, making it possible to form lines of uniform width and form high-definition patterns across different components.
[0030] Furthermore, by controlling the amount of ink used to form the coating of dots that make up the pattern formed on the substrate so that it does not have a fixed periodicity with adjacent dots and is not uniform as a whole, it is possible to suppress the occurrence of streaks and mottled unevenness in the scanning direction and eliminate unevenness in the insulating and conductive properties caused by streaks and mottled unevenness.
[0031] Furthermore, by using a multi-pass method in which an ink ejection device with multiple nozzle holes lined up in a row moves multiple times perpendicularly and parallel to the nozzle row direction to eject ink droplets from the nozzles onto a substrate as a printing medium to form a pattern, it becomes easy to print high-resolution, high-definition patterns.
[0032] The pattern forming method using inkjet printing according to the present invention will be described in comparison with a conventional pattern forming method. For example, a method will be described in which image data is printed using an inkjet head with a resolution of 600 dpi by moving the inkjet head in the nozzle row direction and performing multiple passes so that the output resolution becomes 1200 dpi.
[0033] The inkjet printing method shown in Figure 1 is known as the block method, in which the same nozzle is printed during the first scan in the transport direction, and then the head is moved in the nozzle row direction by the distance (21.2 μm) required for the 1200 dpi output resolution, and the 1200 dpi printing is completed during the second scan. In this case, as shown in FIG. 1, droplets land in succession over "1 scan" and "2 scans," which makes it easy for streaks to occur in the transport direction.
[0034] The inkjet printing method shown in Figure 2 is known as the interleaved method, in which the first scan in the transport direction prints every other pixel using the same nozzle, and the second scan in the transport direction prints the pixels between those printed in the first scan.The head then moves the distance of 1200 dpi resolution (21.2 μm) in the direction of the nozzle row, and prints in the same way for the third and fourth times to complete printing with an output resolution of 1200 dpi. In this case, the landing order becomes cyclical, such as "1st scan" to "4th scan," as shown in the figure, making streaks more likely to occur.
[0035] The inkjet printing method shown in Figure 3 is a random multi-pass method according to the present invention, which involves so-called "random" droplet landing. 1200 dpi printing is completed in a total of eight passes to ensure random droplet landing order. Note that the number of passes can be increased. The number of passes can also be increased by further thinning out the droplets in the transport direction. According to this random multi-pass method, droplets land randomly, making streaks less noticeable.
[0036] In this invention, "random" refers to a state in which randomness or unpredictability is recognized, with no regularity such as overall uniformity or periodicity, in the amount of liquid in the dots or the relative positions of the dots, in a pattern formation method under conditions that are controlled within the range of conditions described below. Specifically, this refers to the state shown in Figure 3, for example.
[0037] As can be inferred from the above comparative examples, the reason why the effects of the present invention are exhibited is thought to be that, in the pattern formation method of the present invention, the landing locations and order of ink droplets are random, so there is no periodicity between adjacent pixels or dots in the printed image, making it less likely that streaks or unevenness will occur overall. [Brief explanation of the drawings]
[0038] [Figure 1] Schematic diagram showing the pattern formation method using the block method [Figure 2] Schematic diagram showing the pattern formation method using the interleaving method [Figure 3] Schematic diagram showing a pattern formation method using a random multi-pass method according to the present invention. [Figure 4] FIG. 1 shows image data in which each pixel has a uniform gradation or density. [Figure 5]FIG. 10 is a diagram showing image data in which the gradation or density of each pixel has a certain periodicity. [Figure 6] A diagram showing a 256-level gray image that does not have a regular periodicity with neighboring pixels. [Figure 7] Image of the liquid volume distribution of dots printed based on the image data in Figure 6 [Figure 8A] Schematic diagram (front view) showing a multi-pass inkjet printing device [Figure 8B] Schematic diagram (top view) showing a multi-pass inkjet printing device [Figure 9] A diagram showing how to print at 1200 dpi using one inkjet head with a resolution of 600 dpi by block printing. [Figure 10] FIG. 10 is a diagram showing image data used in a random multi-pass method in which the amount of liquid in the formed dots is uniform. [Figure 11] A diagram showing how to print at 1200 dpi with random ink droplet placement using one inkjet head with a resolution of 600 dpi. [Figure 12] FIG. 10 is a diagram showing image data of a solid portion in Example 1. [Figure 13] Optical microscope photograph of print 1 at 100x magnification [Figure 14] FIG. 10 shows a printing method according to a second embodiment. [Figure 15] FIG. 10 is a diagram showing image data of a solid portion in Example 2. [Figure 16] FIG. 10 is a diagram showing image data of a solid portion in Example 3. [Figure 17] Optical microscope photograph of print 3 at 100x magnification [Figure 18] FIG. 10 is a diagram showing image data of a circle cutout portion in Example 3. [Figure 19] Optical microscope photograph of the φ500μm circle of printed matter 3 at 100x magnification [Figure 20] FIG. 10 is a diagram showing image data of a circle cutout portion in Example 4. [Figure 21] Optical microscope photograph of the φ500μm circle of printed matter 4 at 100x magnification [Figure 22]Enlarged schematic diagram of a printed circuit board with a Cu wiring pattern [Figure 23] FIG. 10 is a diagram showing image data to be printed on a printed circuit board according to a fifth embodiment. [Figure 24] 13 is an explanatory diagram of wiring portion image data of Example 6. [Figure 25] FIG. 13 is an explanatory diagram of wiring part image data in Example 7. [Figure 26] FIG. 13 is a diagram showing image data of a solid portion in Example 8. [Figure 27] Optical microscope photograph of print 8 at 100x magnification [Figure 28] Optical microscope photograph of printed matter 9 (Comparative Example 1) at 100x magnification [Figure 29] A diagram showing a method for printing at a resolution of 2400 dpi using one inkjet head with a nozzle resolution of 600 dpi, with random ink droplet landing and divided printing (number of image divisions: 2) [Figure 30A] A diagram showing how to print at a resolution of 2400 dpi using one inkjet head with a nozzle resolution of 600 dpi, with random ink droplet placement and divided printing (number of image divisions: 4) (1st scan to 8th scan) [Figure 30B] A diagram showing how to print at a resolution of 2400 dpi using one inkjet head with a nozzle resolution of 600 dpi, with random ink droplet placement and divided printing (number of image divisions: 4) (9 scans to 16 scans). [Figure 31] A diagram showing how to print at a resolution of 2400 dpi with random ink droplet placement using one inkjet head with a nozzle resolution of 600 dpi. [Figure 32] This figure shows a method for printing at a resolution of 2400 dpi using one inkjet head with a nozzle resolution of 600 dpi, with random droplet landing and divided printing (number of image divisions: 2). In this method, the positions of the dots where droplets ejected from the leftmost nozzle and the center nozzle land are the same in scan 1 and scan 5. [Figure 33] A top view of a multi-pass inkjet printing apparatus 100. [Figure 34]A diagram showing how printing is performed with inkjet printing device 1 (the head moves in the X direction and the substrate moves in the Y direction). [Figure 35] A diagram showing how printing is performed with inkjet printing device 100 (head moves in Y direction, substrate moves in X direction) [Figure 36] Diagram showing how printing can be done with an inkjet printer where the substrate moves in both the X and Y directions [Figure 37] A diagram showing how printing is performed with an inkjet printing device in which the head moves in both the X and Y directions. [Figure 38] FIG. 10 is a diagram showing a method of performing bidirectional printing in which the ink ejection device moves back and forth relatively in the main scanning direction and ejects ink droplets on both the forward and backward passes. [Figure 39] FIG. 10 is a diagram showing a method for performing forward / reverse mixed printing in which the ink ejection device moves in a combination of forward and reverse directions relative to the sub-scanning direction. [Figure 40] A diagram showing how to print at a resolution of 2400 dpi using four inkjet heads with a nozzle resolution of 600 dpi. [Figure 41] FIG. 10 is a diagram showing a printing method when the direction of the nozzle row is not perpendicular or parallel to either the X or Y direction, but is oblique. [Figure 42] FIG. 10 is a diagram showing a printing method in which the direction of the ink ejection device itself is not perpendicular or parallel to either the X or Y direction, but is oblique. [Figure 43] A diagram showing a method for printing at a resolution of 2400 dpi with random ink droplet placement using a single inkjet head with a nozzle resolution of 600 dpi, using multi-tone image data. [Figure 44] A diagram showing how to print at 2400 dpi using one inkjet head with a resolution of 600 dpi by interleaving and dividing the print. DETAILED DESCRIPTION OF THE INVENTION
[0039] The pattern formation method of the present invention is a pattern formation method by an inkjet printing method based on image data of a pattern, comprising the steps of: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The method is characterized by at least (1) controlling the amount of ink used to form the coating of dots that constitute the pattern formed on the substrate in accordance with the gradation or density of each pixel that constitutes the image data of the pattern so that it does not have a fixed periodicity with adjacent dots and is not uniform as a whole, or (2) controlling the amount of ink used to form the coating of dots that constitute the pattern formed on the substrate so that the ink droplets land multiple times and the positions of the dots where the droplets land do not follow the order of the rows and columns in which the pixels that constitute the image data are arranged and do not have a fixed periodicity. This feature is a technical feature common to or corresponding to the following embodiments.
[0040] The pattern forming method of the present invention is also (3) a pattern forming method by inkjet printing based on image data of a pattern, in which an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves multiple times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium. The aforementioned In the method of forming a pattern ,before The ink droplets used to form a coating of dots constituting the pattern formed on the substrate are controlled so that they land multiple times, and the positions of the dots where the droplets land do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink ejection device, and are not continuous in the main scanning direction.
[0041] As an embodiment of the present invention, with regard to the pattern formation method of (3) above, from the viewpoint of preventing the occurrence of streaks and mottled unevenness, it is preferable to divide the image data of the pattern into a plurality of parts so that the pixels do not overlap when printed on top of each other, and so that the positions of the dots where the droplets land do not have a constant periodicity in the main scanning direction and sub-scanning direction of the ink ejection device and are not continuous in the main scanning direction, and to print the divided image data in a sequentially overlapping manner.
[0042] As an embodiment of the present invention, in the pattern formation method (3) above, from the viewpoint of preventing the occurrence of streaks and mottled unevenness, it is preferable that the ink ejection device moves back and forth relatively in the main scanning direction and ejects ink droplets on both the forward and backward paths.
[0043] In an embodiment of the present invention, in the pattern formation method (3) above, from the viewpoint of preventing the occurrence of streaks and mottled unevenness, it is preferable that the ink ejection device moves relatively in a combination of forward and reverse directions with respect to the sub-scanning direction.
[0044] As an embodiment of the present invention, in the pattern formation method (3) above, from the viewpoint of preventing the occurrence of streaks and mottled unevenness, it is preferable to control the amount of ink liquid used to form the coating of dots that constitute the pattern to be formed on the substrate so that it corresponds to the gradation or density of each pixel that constitutes the image data of the pattern, does not have a fixed periodicity with adjacent dots, and is not uniform as a whole.
[0045] In an embodiment of the present invention, from the viewpoint of preventing streaks and mottled unevenness, it is preferable to control the amount of ink liquid per dot that forms the inner edge of the patterned portion at the boundary between the patterned portion and the non-patterned portion formed on the substrate to be approximately the same.
[0046] In an embodiment of the present invention, from the viewpoint of preventing the occurrence of insulation or poor conductivity, it is preferable to control the amount of ink liquid per dot forming the edge of a convex portion on a substrate having a convex portion so that it is approximately the same.
[0047] In an embodiment of the present invention, from the viewpoint of preventing the occurrence of insulation or poor conductivity, it is preferable to control the amount of ink liquid per dot so that, for a substrate having a convex portion, the dots forming the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion have a larger amount of ink liquid per dot than the dots forming the edge of the convex portion.
[0048] In an embodiment of the present invention, from the viewpoint of preventing the occurrence of insulation or poor conductivity, it is preferable to control the amount of liquid in the dots that form the outer edge surface of the boundary between the inside and outside of the bottom surface of the convex portion on a substrate having a convex portion so that it changes continuously from the surface in contact with the convex portion to the surface facing outward.
[0049] In an embodiment of the present invention, from the viewpoint of preventing the occurrence of insulation or poor conductivity, it is preferable to control the average thickness of the coating film of the dots that make up the pattern to be 15 μm or more.
[0050] In an embodiment of the present invention, from the viewpoint of preventing the occurrence of streaks and mottled unevenness, it is preferable to change the amount of ink that is deposited to form the coating film of each dot that constitutes the pattern.
[0051] In an embodiment of the present invention, from the viewpoint of forming a high-definition pattern, it is preferable to use any one of hot-melt type, gel type, and thixotropic type ink as the ink.
[0052] In an embodiment of the present invention, from the viewpoint of applications that match the object of the invention, for example, from the viewpoint that the problem to be solved by the present invention when protecting a circuit pattern with an insulating film is to be solved, it is preferable to use a solder resist ink as the ink.
[0053] The pattern forming method of the present invention is suitably used in an inkjet printing apparatus.
[0054] The present invention, its components, and embodiments for carrying out the present invention will be described in detail below. In this application, the symbol "to" is used to mean that the numerical values before and after it are included as lower and upper limits.
[0055] 1. Overview of the pattern formation method of the present invention The pattern formation method of the present invention is a pattern formation method by an inkjet printing method based on image data of a pattern, comprising the steps of: An ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink is ejected from the nozzles of the ink ejection device to the substrate as a printing medium. In a method of forming the pattern by ejecting ink droplets onto a plate, at least, (1) The amount of ink used to form a coating of dots constituting a pattern formed on the substrate is controlled so as not to have a constant periodicity with adjacent dots and not to be uniform as a whole coating of the pattern, in accordance with the gradation or density of each pixel constituting the image data of the pattern, or (2) The ink droplets used to form the coating of dots that constitute the pattern formed on the substrate are deposited multiple times, and the positions of the dots where the droplets are deposited are controlled so that they do not follow the order of the rows and columns in which the pixels that constitute the image data are arranged, and do not have a fixed periodicity.
[0056] (3) A pattern forming method using an inkjet printing method based on image data of a pattern, in which an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves multiple times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium. The aforementioned In the method of forming a pattern ,beforeThe ink droplets used to form a coating of dots constituting the pattern formed on the substrate are controlled so that they land multiple times, and the positions of the dots where the droplets land do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink ejection device, and are not continuous in the main scanning direction.
[0057] As mentioned above, the pattern formation method used in the present invention is characterized by the use of a so-called "multi-pass method" in which an ink ejection device having a plurality of nozzle holes aligned in a row moves multiple times perpendicularly and parallel to the nozzle row direction to eject ink droplets from the nozzles onto a substrate as a printing medium. Details of the device used in the present invention will be described later.
[0058] Regarding (3), this method is characterized by the use of a method in which an ink ejection device having multiple nozzle holes or a substrate as a printing medium moves multiple times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium to form a pattern.
[0059] stomach A detailed description of the link will be given later. The embodiments and components of the present invention will be described below in order.
[0060] 1.1 Pattern formation method using the random drop multi-pass method The pattern forming method according to the present invention is characterized in that the amount of ink used to form the coating of dots constituting the pattern formed on the substrate is controlled in accordance with the gradation or density of each pixel constituting the image data of the pattern so that it does not have a fixed periodicity with adjacent dots and is not uniform as a whole.
[0061] Here, "not uniform" means that although there are some dots where the difference in liquid volume between each dot is substantially the same within a range of ±5%, the dots with the same liquid volume are not periodically arranged. An example of a case where the amount of ink used to form a dot has a certain periodicity with respect to adjacent dots is when a pattern is formed by printing using image data in which the gradation or density of each pixel has a certain periodicity, as shown in Figures 4 and 5.
[0062] In this specification, the method that satisfies the above control conditions will be referred to as the "random drop multi-pass method." In this invention, "random" refers to a state in which randomness or unpredictability is recognized, with no regularity such as overall uniformity or periodicity, in the amount of liquid in the dots or the relative positions of the dots, in a pattern formation method under conditions that are controlled within the range of conditions described below. Specifically, this refers to the state shown in Figure 7, for example.
[0063] In this invention, the term "dot" refers to the smallest pixel unit constituting an ink image formed on a printing medium by inkjet printing, and refers to a coating portion formed by one droplet of ink liquid. Therefore, a pixel in the ink image corresponding to one pixel in the image data to be printed may be formed by multiple dots (droplets).
[0064] Hereinafter, an example of an embodiment of a pattern formation method using a random drop multi-pass method according to the present invention will be described. However, the present invention is not limited to the following embodiment and aspects, and any embodiment that satisfies the above control conditions is included within the technical scope of the present invention.
[0065] Image data and ink volume distribution in this embodiment will be described. Since the random drop multi-pass method of the present invention changes the amount of liquid in a dot in accordance with the gradation or density of each pixel, it is preferable that the image data for the random drop multi-pass method be a 256-level gray image that does not have a fixed periodicity with adjacent pixels, as shown in FIG. 6 as an example.
[0066] Random multi-tone image data can be created by processing a gray image. For example, random multi-tone gray image data like the one shown in Figure 16 can be created by applying a noise filter to a 256-level 30% gray image in Adobe Photoshop.
[0067] Based on this multi-tone image data, for example, the liquid amount can be allocated as follows: 7 pL for black portions of 0 to 86 gradations, 3.5 pL for gray portions of 87 to 172 gradations, and 0 pL for white portions of 173 to 255 gradations. Figure 7 is an image diagram of the liquid volume distribution of dots formed by printing based on the image data in Figure 6. By randomly distributing the liquid volume, the occurrence of streaks and mottled unevenness can be suppressed.
[0068] Next, the inkjet printing apparatus and printing method according to this embodiment will be described. Figure 8 is a schematic diagram showing an inkjet printing (printing) apparatus 1 according to this embodiment. Details of the apparatus will be described later, but in the apparatus shown in Figure 8, a carriage 2 equipped with an inkjet head 3 with a resolution of 600 dpi that ejects ink is mounted on an X-direction linear stage 4, and the head 3 moves in the X direction. Furthermore, a table 5 on which a substrate is placed is mounted on a Y-direction linear stage 6, and moves in the Y direction (transport direction).
[0069] Pattern formation by the random drop multi-pass method in this embodiment can be performed by block printing, and FIG. 9 shows a method of performing block printing at 1200 dpi using one inkjet head with a resolution of 600 dpi.
[0070] The inkjet head 3 shown in Figure 8 moves in the Y direction (transport direction) and prints the first scan with the amount of ink allocated according to the image data.The head then moves 21.2 μm (equivalent to one pixel at 1200 dpi) in the X direction and prints the second scan with the amount of ink allocated according to the image data, completing the 1200 dpi printing.
[0071] 1.2 Pattern formation method using the random multi-pass method (A) In an embodiment of the present invention, it is also preferable to control the ink droplets used to form a coating of dots that constitute a pattern formed on a substrate to land multiple times, and to control the positions of the dots where the droplets land so that they do not follow the order of the rows and columns in which the pixels that constitute the image data are arranged, and do not have a fixed periodicity.
[0072] In this specification, the method that satisfies the above control conditions will be referred to as the "random multi-pass method (A)."
[0073] Hereinafter, an example of an embodiment of the pattern formation method using the random multi-pass method (A) according to the present invention will be described, but the present invention is not limited to the following embodiment and aspects, and any embodiment that satisfies the above control conditions is included in the technical scope of the present invention.
[0074] Figure 10 shows image data used in the random multi-pass method, where each dot is formed with a uniform amount of liquid. Alternatively, multi-tone random image data such as that shown in Figure 6 may be used in the random multi-pass method to form each dot with a different amount of liquid.
[0075] The impact of ink in this embodiment will be described. In one scan, dots are formed by landing at intervals rather than consecutively in the arranged row and column directions, so that the intervals are not uniform. In the second and subsequent scans, dots are formed in the same way in positions where dots have not been formed, so that dots do not overlap. The number of dots formed in each scan does not have to be uniform. The number of scans may be further increased.
[0076] Next, a printing method according to this embodiment will be described. FIG. 11 shows a method for printing at 1200 dpi with random ink droplet placement using one inkjet head with a resolution of 600 dpi. In the pattern formation by the random multi-pass method in this embodiment shown in FIG. 3, as shown in FIG. 11, the inkjet head prints by scanning four times in the Y direction (transport direction), then moves 21.2 μm (equivalent to one pixel at 1200 dpi) in the X direction, and again prints by scanning four times in the Y direction, thereby completing printing with a total of eight movements (passes) (see FIG. 8 for the device).
[0077] 1.3 Pattern formation method using the random multi-pass method (B) An embodiment of the present invention is a pattern formation method using an inkjet printing system based on image data of a pattern, in which an ink discharge device having a plurality of nozzle holes or a substrate as a printing medium moves multiple times, and ink droplets are discharged from the nozzles of the ink discharge device onto the substrate as the printing medium to form a pattern, wherein the ink used has a ratio η2 / η1 of viscosity η1 at the temperature at the time of discharge to viscosity η2 at the temperature at the time of landing of 100 or more, and the ink droplets used to form a coating of dots that constitute the pattern formed on the substrate are landed multiple times, and the positions of the dots where the droplets land are controlled so that they do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink discharge device and are not continuous in the main scanning direction.
[0078] In this specification, the method that satisfies the above control conditions will be referred to as the "random multi-pass method (B)."
[0079] Hereinafter, an example of an embodiment of the pattern formation method using the random multi-pass method (B) according to the present invention will be described, but the present invention is not limited to the following embodiment and aspects, and any embodiment that satisfies the above control conditions is included in the technical scope of the present invention.
[0080] In the pattern formation method using the random multi-pass method (A) described in 1.2, an ink ejection device having multiple nozzle holes aligned in a row moves multiple times perpendicularly and parallel to the nozzle row direction, ejecting ink droplets from the nozzles onto a substrate as a printing medium to form a pattern. However, in this embodiment, an ink ejection device having multiple nozzle holes or a substrate as a printing medium moves multiple times, and ink droplets are ejected from the nozzles of the ink ejection device onto a substrate as a printing medium to form a pattern.
[0081] As will be described in more detail later, the inventors conducted further research and found that the main scanning direction and sub-scanning direction of the ink ejection device do not have to be perpendicular or parallel to the nozzle row, and that streaks and unevenness are less likely to occur whether only one of the ink ejection device and the substrate as the printing medium moves to form a pattern, or whether both move to form a pattern.
[0082] Furthermore, while the pattern formation method using the random multi-pass method (A) described in 1.2 was characterized by controlling the positions of dots where droplets land so that they do not follow the order of rows and columns in which the pixels constituting the image data are arranged and do not have a fixed periodicity, this embodiment is characterized by controlling the dots so that they do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink discharge device and are not continuous in the main scanning direction. In other words, it has been found that by controlling the dots so that they do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink discharge device and are not continuous in the main scanning direction, even if they are partially continuous in the sub-scanning direction, streaks and unevenness are less likely to occur.
[0083] 1.3.1 Split printing As an embodiment of the present invention, it is also preferable to divide the image data of the pattern into multiple pieces so that the pixels do not overlap when printed on top of each other, and so that the positions of the dots where the droplets land do not have a constant periodicity in the main scanning direction and sub-scanning direction of the ink ejection device and are not continuous in the main scanning direction, and to print the divided image data sequentially on top of each other.
[0084] In this specification, the printing method that satisfies the above control conditions will be referred to as "divided printing."
[0085] An example of an embodiment of the pattern formation method by divided printing according to the present invention will be described below, but the present invention is not limited to the following example embodiment and aspects, and is within the technical scope of the present invention as long as the above control conditions are satisfied.
[0086] Figure 29 shows a method for printing at a resolution of 2400 dpi using a single inkjet head with a nozzle resolution of 600 dpi, with random droplet placement and divided printing. In Figure 29, original image data in which each dot is formed with a uniform amount of liquid is used, but it is also possible to use multi-tone random original image data such as that shown in Figure 6 and form each dot with a different amount of liquid.
[0087] In split printing, this original image data is split into two, split image data is created, and then each split image data is printed in sequence, overlapping each other. Therefore, the split image data is created so that the pixels do not overlap when printed in overlapping order. In addition, the split image data is created so that the positions of the dots where the droplets land do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink ejection device, and are not continuous in the main scanning direction.
[0088] Split image data can be created using image processing software such as Adobe's Photoshop 2020. For example, a gray image can be converted to two-tone monochrome using Photoshop's error diffusion method to create a random black and white image. The image's color tone is then inverted to create an inverted black and white image. The resulting two images are split images with solid black data that land randomly and do not overlap.
[0089] Divided printing will be explained below by comparing FIGS. Figure 31 shows a method for printing at a resolution of 2400 dpi with random droplet placement using one inkjet head with a nozzle resolution of 600 dpi. With this method, printing is completed for each row in the main scanning direction.
[0090] In Fig. 31, printing of a row in the main scanning direction is completed in two consecutive scans, for example, scan 1 and scan 2. On the other hand, in divided printing, as shown in Fig. 29, it is completed in two non-consecutive scans, scan 1 and scan 5.
[0091] In this way, with divided printing, it takes a relatively long time to complete printing a row in the main scanning direction, so the ink is more likely to solidify, ink flow can be suppressed, and streaks and unevenness are less likely to occur.
[0092] Figures 30A and 30B show a method of dividing the original image data into four parts and performing divided printing similar to that shown in Figure 29. In this case, printing of a row in the main scanning direction is completed in four non-consecutive scans: 1 scan, 5 scans, 9 scans, and 13 scans.
[0093] In this way, by increasing the number of divisions of the original image data, the number of scans required to complete printing of a row in the main scanning direction increases, which further extends the time required to complete printing, making it less likely that streaks or unevenness will occur, and reducing surface roughness.
[0094] Furthermore, because printing is also performed in the row direction by the time printing of columns in the main scanning direction is completed, even when using ink with a relatively high viscosity upon landing or ink with a relatively fast phase transition time, the ink is less likely to solidify in a linear pattern in the main scanning direction, making it less likely to produce streaks or unevenness. Furthermore, by increasing the number of scans, it is possible to reduce the occurrence of landing misalignment due to the interaction between adjacent landing ink dots and previously landed ink dots, improving pattern formability.
[0095] In this embodiment, random landing means controlling the positions of dots where droplets land so that they do not have a fixed periodicity in the main scanning direction and sub-scanning direction of the ink ejection device and are not continuous in the main scanning direction.
[0096] Figure 32 shows a method of performing divided printing similar to that shown in Figure 29, but in scan 1 and scan 5, the positions of the dots where droplets ejected from the leftmost nozzle and the middle nozzle land are the same.
[0097] The streaks and unevenness that are the problem solved by this invention are likely to occur when the positions of dots where droplets land are periodic or regular in the column direction of the main scanning direction, but are unlikely to occur even if they are periodic or regular in the row direction. Therefore, as shown in Figure 32, even if the positions of dots where droplets ejected from different nozzles land are the same in some scans, the occurrence of streaks and unevenness can be sufficiently suppressed.
[0098] 1.3.2 Bidirectional printing In a preferred embodiment of the present invention, the ink ejection device moves relatively back and forth in the main scanning direction, ejecting ink droplets on both the forward and backward paths.
[0099] In this specification, a printing method that satisfies the above control conditions will be referred to as "bidirectional printing."
[0100] An example of an embodiment of the pattern formation method by bidirectional printing according to the present invention will be described below, but the present invention is not limited to the following embodiment and aspects, and is within the technical scope of the present invention as long as the above control conditions are satisfied.
[0101] Figure 38 shows a method of bidirectional printing in which ink ejection devices move back and forth relatively in the main scanning direction, ejecting ink droplets on both the forward and backward passes. Note that although divided printing is performed in Figure 38, it is not necessarily required to perform divided printing.
[0102] In one scan, the ink ejection device moves relatively in the direction of the arrow (forward movement) while ejecting ink droplets. Next, in the second scan, the ink ejection device moves relatively in the direction of the arrow, and then moves relatively in the direction of the arrow while ejecting ink droplets (return movement) so that a row of dots is formed adjacent to the row of dots formed in the first scan to the right. This process is repeated a total of eight scans, and printing is completed.
[0103] In this embodiment, "moving relatively" means that either the ink ejection device or the substrate as the printing medium moves, or both of them move, and that the ink ejection device moves relative to the positional relationship between the ink ejection device and the substrate as the printing medium.
[0104] Therefore, in one scan of Figure 38, the substrate may be fixed and the ink discharge device may be moved in the direction of the arrow, or the ink discharge device may be fixed and the substrate may be moved in the direction opposite to the arrow.
[0105] In unidirectional printing, as shown in Figure 29, the ink ejection device moves back and forth relatively in the main scanning direction, but ejects ink droplets only on the forward path and only moves on the return path. Therefore, by performing bidirectional printing, printing time can be shortened and productivity improved.
[0106] 1.3.3 Forward / reverse mixed printing In an embodiment of the present invention, it is also preferable that the ink ejection device moves relatively in a combination of forward and reverse directions with respect to the sub-scanning direction.
[0107] In this specification, a printing method that satisfies the above control conditions will be referred to as "forward and reverse mixed printing."
[0108] Hereinafter, an example of an embodiment of the pattern formation method by forward / reverse mixed printing according to the present invention will be described, but the present invention is not limited to the following embodiment and aspects, and is within the technical scope of the present invention as long as the above control conditions are satisfied.
[0109] Figure 39 shows a method for mixed forward and reverse printing in which the ink ejection device moves in a combination of forward and reverse directions relative to the sub-scanning direction. Note that although divided printing is performed in Figure 39, it is not necessarily required to perform divided printing.
[0110] In one scan, the ink ejection device moves relatively in the main scanning direction and ejects ink droplets. Next, in the second scan, the ink ejection device moves relatively in the direction of the arrow, and then further moves in the main scanning direction, ejecting ink droplets, so that a row of dots is formed to the right of the row of dots formed in the first scan, with a gap of one dot between them. Then, in the third scan, the ink ejection device moves relatively in the direction of the arrow, and then further moves in the main scanning direction, ejecting ink droplets, so that a row of dots is formed between the row of dots formed in the first scan and the row of dots formed in the second scan. This process is repeated a total of eight scans, and printing is completed.
[0111] In normal printing, in which the ink ejection device moves relative to one another in only one direction, as shown in Figure 29, additional dots may be formed adjacent to previously formed dots, resulting in adjacent dots being formed before the ink in the dots has solidified, causing streaks and unevenness. On the other hand, in normal-reverse mixed printing, dots are formed with a gap between existing dots, so adjacent dots are formed after the ink in the dots has solidified, making streaks and unevenness less likely to occur. Furthermore, in normal-reverse mixed printing, dots are formed with a gap between existing dots, so the interaction between adjacent landing dots and the previously landed ink (dots) can reduce the occurrence of landing misalignment, improving pattern formability.
[0112] 1.3.4 Application of random drop multipath method In a further embodiment of the present invention, it is also preferable to control the amount of ink used to form the coating of dots that make up the pattern formed on the substrate so that it corresponds to the gradation or density of each pixel that makes up the image data, does not have a fixed periodicity with adjacent dots, and is not uniform as a whole.
[0113] FIG. 43 shows a method for printing at a resolution of 2400 dpi with random ink droplets using multi-tone image data and one inkjet head with a nozzle resolution of 600 dpi.
[0114] The image data used in the random multi-pass method of the present invention may be image data such as that shown in Figure 31, in which each dot is formed with a uniform amount of liquid, or multi-tone random image data such as that shown in Figure 43 may be used to form each dot with a different amount of liquid corresponding to the gradation or density of each pixel. In this way, by combining the random drop multi-pass method and the random multi-pass method, the randomness of adjacent dots is further increased, making it less likely that streaks or unevenness will occur.
[0115] In an embodiment of the present invention, depending on the shape of the pattern to be formed, it is also preferable to control the amount of ink per dot (droplet) that forms the edge inside the patterned portion at the boundary between the patterned portion and the non-patterned portion formed on the substrate so that it is approximately the same. Note that "approximately the same amount of ink" here means that the difference in amount is within ±5%.
[0116] Furthermore, when the printing medium is a substrate with a convex portion, such as a wiring board for an electronic device, it is also preferable to control the amount of ink per dot (droplet) that forms the edge of the convex portion so that it is approximately the same for the substrate with the convex portion.
[0117] Furthermore, for a substrate having a convex portion, it is also preferable to control the amount of ink per dot (droplet) so that the dots (droplets) that form the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion have a larger amount of ink per dot (droplet) than the dots (droplets) that form the edge of the convex portion.
[0118] In addition, for a substrate having a convex portion, it is also a preferred embodiment to control the amount of liquid in the dots (droplets) that form the outer edge surface of the boundary between the inside and outside of the bottom surface of the convex portion so that it changes continuously from the surface in contact with the convex portion to the surface facing outward.
[0119] In an embodiment of the present invention, it is preferable from the viewpoint of realizing the effects of the present invention to control the average thickness of the coating film of the dots (droplets) that make up the pattern to 15 μm or more, although this depends on the performance of the ink used and the purpose of the pattern to be formed.
[0120] From the same viewpoint as above, it is also a preferred embodiment to change the amount of ink that is landed to form a coating film of each dot (droplet) that constitutes the pattern. The above-mentioned various embodiments and conditions will be specifically explained in the examples below.
[0121] 1.4 Ink The ink used in the forming method of the present invention has a ratio η2 / η1 of viscosity η1 at the temperature when the ink is ejected to viscosity η2 at the temperature when the ink is landed, of 100 or more. is preferred. By setting η2 / η1 to 100 or more, it is possible to suppress the occurrence of bulges and form a high-definition pattern. Furthermore, by setting η2 / η1 to 200 or more, or even 500 or more, it is possible to improve the formation of high-definition patterns on heterogeneous materials or on substrates with irregularities, which is preferable.
[0122] The viscosity of the ink when ejected and when it lands is not particularly limited as long as it is within a range that satisfies the above ratio. However, it is preferable that the viscosity (η1) when the temperature during ejection is set to, for example, 75°C be in the range of 3 to 15 mPa s in terms of the ejection properties of the inkjet head. On the other hand, when the ink is dropped at room temperature (25°C), the viscosity (η2) is 1×10 2 ~1×10 4 Preferably, it is mPa·s. Viscosity (η2) is 1×10 2 ~1×10 4 By having a viscosity of mPa·s, the ink is fixed on the substrate when it lands, preventing the occurrence of bulges and other problems.
[0123] In the pattern forming method according to the present invention, particularly by using the ink, it is possible to prevent the occurrence of insulation, poor conductivity, etc. This effect is particularly remarkable when forming a pattern across different components or components with convex shapes. In the present invention, it is preferable to use any one of the hot melt type, gel type, and thixotropic type inks as described below.
[0124] <Viscosity> The "viscosity η2 at the temperature at the time of impact" can be defined as the viscosity of the ink that is reached before ink flow due to the wetting and spreading of the ink on the substrate (not due to the impact of the ink landing) occurs substantially. Specifically, it is the viscosity that the ink reaches within one second after landing on the substrate, but in the present invention, it is defined as the temperature of the substrate when the ink lands. On the other hand, the "viscosity η1 at the temperature at the time of ejection" is the temperature of the head at the time when the ink is ejected from the head.
[0125] The viscosity is measured by placing the ink in a temperature-controllable stress-controlled rheometer (e.g., Physica MCR300, manufactured by Anton Paar), heating it to 100°C, and cooling it to 25°C at a temperature drop rate of 0.1°C / s. The measurement can be performed using a cone plate with a diameter of 75.033 mm and a cone angle of 1.017° (e.g., CP75-1, manufactured by Anton Paar). The temperature can be controlled using a temperature control device, for example, a Peltier element type temperature control device (TEK150P / MC1) attached to the Physica MCR300.
[0126] <Method for controlling viscosity ratio η2 / η1> The condition for the viscosity ratio η2 / η1 of the ink according to the present invention can be appropriately satisfied by, for example, setting the ink composition and physical conditions such as the temperature and humidity at the time of ink landing. The ink preferably has a viscosity change property due to a phase change mechanism, such as hot melt, thixotropy, or gelation. The ink exhibits a phase change function from the time of ink ejection to the time of ink landing, thereby satisfying the viscosity ratio η2 / η1 condition according to the present invention.
[0127] "Hot melt" refers to the process of melting by applying heat, while "hot melt phase change mechanism" refers to the mechanism by which a material changes from a heated (melted) state with low viscosity (at the time of ejection) to a high viscosity state (at the time of impact) by cooling. From the viewpoint of favorably realizing the phase change mechanism of the hot melt, it is preferable to change the temperature of the ink between when it is ejected and when it lands, for example, by heating the ink when it is ejected and / or cooling the ink when it lands.
[0128] In the present invention, when the temperature of the ink is changed between when it is ejected and when it lands, a temperature adjusting means such as a heater (heating means) for heating the ink filled in the inkjet head or a cooling means for cooling the substrate can be used as appropriate.
[0129] "Thixotropy" refers to a property that exhibits intermediate properties between a plastic solid such as a gel and a non-Newtonian liquid such as a sol, and refers to a property in which viscosity changes over time. The "thixotropic phase change mechanism" refers to a phase change mechanism in which the viscosity changes from a low state (at the time of ejection) under the action of shear stress due to stirring, vibration, etc. to a high viscosity state (after impact) when the action of shear stress is reduced or stopped. For example, a phase change mechanism due to thixotropy can be realized by appropriately using a shear stress applying means that applies stirring or vibration (micro-vibration) to the ink filled in the inkjet head.
[0130] The "gelation-induced phase change mechanism" refers to a phase change mechanism in which the ink transitions from a low-viscosity state (at ejection) due to the independent mobility of solutes to a high-viscosity state (at impact) as the solutes lose their independent mobility and form an aggregated structure due to interactions such as a polymer network formed by chemical or physical aggregation, or an aggregated structure of fine particles. In this case, it is preferable for the ink to contain a gelling agent such as an oil gelling agent (described in detail below).
[0131] To favorably realize the gelation-induced phase change mechanism, it is preferable to change the temperature of the ink between when it is ejected and when it lands. For example, a preferred method is to heat the ink to a temperature above the sol-gel phase transition temperature (gelation temperature) when it is ejected to turn it into a sol, and then cool the ink to a temperature below the sol-gel phase transition temperature (gelation temperature) when it lands to turn it into a gel.
[0132] <Thermosetting inkjet ink> The ink used in the present invention is preferably a thermosetting inkjet ink that contains a compound having a thermosetting functional group and a gelling agent and undergoes a sol-gel phase transition due to temperature.More preferably, the thermosetting inkjet ink contains a compound having a photopolymerizable functional group and a photopolymerization initiator.
[0133] ≪Thermosetting functional group≫ From the viewpoint of thermosetting property, the thermosetting functional group is preferably at least one selected from the group consisting of a hydroxy group, a carboxy group, an isocyanate group, an epoxy group, a (meth)acrylic group, a maleimide group, a mercapto group, and an alkoxy group.
[0134] <Gelling agent> The gelling agent is preferably maintained in a uniformly dispersed state in the cured film cured by light and heat, which makes it possible to prevent moisture from penetrating into the cured film.
[0135] Such gelling agents are preferably at least one compound selected from the group consisting of compounds represented by the following general formula (G1) or (G2), in that they are dispersed in the cured film without inhibiting the curing of the ink, and are also preferred in that they have good pinning properties in inkjet printing, can achieve both fine lines and a thick film, and are excellent in fine line reproducibility. General formula (G1): R1-CO-R2 General formula (G2): R3-COO-R4 [In the formula, R1 to R4 each independently represent an alkyl chain having 12 or more carbon atoms and a linear portion, which may be branched.]
[0136] The ketone wax represented by general formula (G1) or the ester wax represented by general formula (G2) has a linear or branched hydrocarbon group (alkyl chain) with 12 or more carbon atoms, which increases the crystallinity of the gelling agent, improves water resistance, and creates more space in the house-of-card structure described below. This makes it easier for ink media such as solvents and photopolymerizable compounds to be fully enclosed in the space, improving the pinning ability of the ink.
[0137] Furthermore, it is preferable that the number of carbon atoms in the linear or branched hydrocarbon group (alkyl chain) is 26 or less. If the number of carbon atoms is 26 or less, the melting point of the gelling agent does not become excessively high, and therefore it is not necessary to heat the ink excessively when ejecting the ink.
[0138] From the above viewpoints, it is particularly preferable that R1 and R2, or R3 and R4, are linear hydrocarbon groups having from 12 to 23 carbon atoms. Furthermore, from the viewpoint of increasing the gelling temperature of the ink and gelling the ink more rapidly after landing, it is preferable that either R1 or R2, or either R3 or R4, is a saturated hydrocarbon group having from 12 to 23 carbon atoms.
[0139] From the above viewpoint, it is more preferable that both R1 and R2, or both R3 and R4, are saturated hydrocarbon groups having 11 or more and less than 23 carbon atoms.
[0140] The content of the gelling agent is preferably within the range of 0.5 to 5.0% by mass relative to the total mass of the ink. By setting the content of the gelling agent within this range, the solubility of the gelling agent in the solvent component and the pinning effect are improved, and further, the water resistance of the cured film is improved. From the above viewpoint, the content of the gelling agent in the inkjet ink is more preferably within the range of 0.5 to 2.5% by mass.
[0141] Furthermore, from the following viewpoint, it is preferable that the gelling agent crystallizes in the ink at a temperature equal to or lower than the gelling temperature of the ink. The gelling temperature is the temperature at which the gelling agent undergoes a phase transition from sol to gel when the ink, which has been solated or liquefied by heating, is cooled, causing a sudden change in the viscosity of the ink. Specifically, the solated or liquefied ink is cooled while its viscosity is measured using a viscoelasticity measuring device (e.g., MCR300, manufactured by Physica), and the temperature at which the viscosity suddenly increases can be determined to be the gelling temperature of the ink.
[0142] <Compound having a photopolymerizable functional group> The compound having a photopolymerizable functional group (also referred to as a photopolymerizable compound) may be any compound that undergoes a polymerization or crosslinking reaction upon irradiation with actinic rays, thereby polymerizing or crosslinking and curing the ink. Examples of the photopolymerizable compound include radically polymerizable compounds and cationically polymerizable compounds. The photopolymerizable compound may be any of a monomer, a polymerizable oligomer, a prepolymer, or a mixture thereof. The inkjet ink may contain only one type of photopolymerizable compound, or two or more types of photopolymerizable compounds.
[0143] The radical polymerizable compound is preferably an unsaturated carboxylic acid ester compound, more preferably a (meth)acrylate, and examples of such compounds include the above-mentioned compounds having a (meth)acrylic group.
[0144] The cationically polymerizable compound may be an epoxy compound, a vinyl ether compound, an oxetane compound, etc. The inkjet ink may contain only one type of cationically polymerizable compound, or two or more types of cationically polymerizable compounds.
[0145] <Photopolymerization initiator> When the photopolymerizable compound is a radical polymerizable compound, a photoradical initiator is preferably used as the photopolymerization initiator, and when the photopolymerizable compound is a cationically polymerizable compound, a photoacid generator is preferably used.
[0146] The ink of the present invention may contain only one type of photopolymerization initiator, or may contain two or more types. The photopolymerization initiator may be a combination of both a photoradical initiator and a photoacid generator. Photoradical initiators include cleavage-type radical initiators and hydrogen abstraction-type radical initiators.
[0147] <Coloring agent> The ink used in the present invention may further contain a colorant, if necessary. The colorant may be a dye or a pigment, but a pigment is preferred because it has good dispersibility in the components of the ink and excellent weather resistance.
[0148] The pigment is preferably dispersed so that the volume average particle size of the pigment particles is preferably within a range of 0.08 to 0.5 μm, and the maximum particle size is preferably within a range of 0.3 to 10 μm, more preferably within a range of 0.3 to 3 μm. The pigment dispersion is adjusted by selecting the pigment, dispersant, and dispersion medium, dispersing conditions, filtration conditions, etc.
[0149] To improve the dispersibility of the pigment, a dispersant and a dispersion aid may be further contained. The total amount of the dispersant and dispersion aid is preferably within the range of 1 to 50% by mass relative to the pigment.
[0150] The ink used in the present invention may further contain a dispersion medium for dispersing the pigment, if necessary. A solvent may be contained in the ink as the dispersion medium, but in order to prevent the solvent from remaining in the printed matter formed, it is preferable to use a photopolymerizable compound (particularly a monomer with low viscosity) as described above as the dispersion medium.
[0151] When a dye is used, an oil-soluble dye or the like can be used.
[0152] The ink may contain one or more types of colorant and may be toned to a desired color. The content of the colorant is preferably within a range of 0.1 to 20% by mass, more preferably within a range of 0.4 to 10% by mass, based on the total amount of the ink.
[0153] <Other ingredients> The ink used in the present invention may further contain other components such as a polymerization inhibitor, a surfactant, a curing accelerator, a coupling agent, and an ion scavenger, as long as the effects of the present invention are obtained. The ink may contain only one type of these components, or two or more types. Furthermore, from the viewpoint of curability, a solvent-free ink is essentially preferred, but a solvent can also be added to adjust the ink viscosity.
[0154] <Physical Properties> The viscosity of the ink used in the present invention at 25°C is 1 to 1 × 10 4 A viscosity in the range of Pa·s is preferred in that the ink is sufficiently gelled when cooled to room temperature after impact and provides good pinning properties. Furthermore, from the viewpoint of further improving ejection properties from an inkjet head, the viscosity of the ink of the present invention at 80°C is preferably in the range of 3 to 20 mPa·s, and more preferably in the range of 7 to 9 mPa·s.
[0155] The ink used in the present invention preferably has a phase transition point in the range of 40°C or higher and lower than 100°C. If the phase transition point is 40°C or higher, the ink quickly gels after landing on the printing medium, resulting in higher pinning properties. If the phase transition point is lower than 100°C, the ink is easier to handle and has higher ejection stability. From the viewpoint of enabling the ink to be ejected at lower temperatures and reducing the load on the image forming apparatus, the phase transition point of the ink is more preferably in the range of 40 to 60°C.
[0156] From the viewpoint of further improving the ejection properties from an inkjet head, the average dispersed particle size of the pigment particles according to the present invention is preferably in the range of 50 to 150 nm, and the maximum particle size is preferably in the range of 300 to 1000 nm. A more preferred average dispersed particle size is in the range of 80 to 130 nm. The average dispersed particle size of the pigment particles according to the present invention refers to a value determined by dynamic light scattering using a Datasizer Nano ZSP (manufactured by Malvern). Note that inks containing colorants have high concentrations, and light does not pass through this measuring instrument; therefore, the ink is diluted 200 times before measurement. The measurement temperature is room temperature (25°C).
[0157] <<Formation of solder resist pattern>> The ink used in the present invention is preferably a solder resist ink for forming a solder resist pattern for use on a printed circuit board. When a solder resist pattern is formed using this ink, it is possible to prevent moisture from penetrating into the solder resist pattern, resulting in good adhesion between the copper foil and the solder resist pattern on the printed circuit board, and also preventing copper migration and suppressing a decrease in insulation properties.
[0158] The method for forming a solder resist pattern using the ink used in the present invention preferably includes the following steps: (1) ejecting the ink from the nozzles of an inkjet head and causing it to land on a printed circuit board on which a circuit has been formed; and (3) heating the ink to fully cure it. When the ink used in the present invention contains a compound having a photopolymerizable functional group and a photopolymerization initiator, it is preferable to include a step (step (2)) between the above steps (1) and (3) in which the deposited ink is irradiated with actinic rays to provisionally cure the ink.
[0159] Step (1): In step (1), droplets of the ink of the present invention are ejected from an inkjet head and landed on a printed circuit board, which is a printing medium, at positions corresponding to the solder resist pattern to be formed, thereby forming a pattern. The ejection method from the inkjet head may be either an on-demand method or a continuous method.
[0160] Discharging ink droplets from an inkjet head in a heated state can improve discharge stability. The ink temperature during discharge is preferably in the range of 40 to 100°C, and more preferably in the range of 40 to 90°C to further improve discharge stability. In particular, it is preferable to discharge the ink at a temperature that results in a viscosity of the ink in the range of 7 to 15 mPa·s, more preferably in the range of 8 to 13 mPa·s.
[0161] To improve the ejection properties of sol-gel phase transition inks from inkjet heads, it is preferable that the temperature of the ink when filled into the inkjet head be set to between (gelation temperature + 10)°C and (gelation temperature + 30)°C. If the temperature of the ink inside the inkjet head is less than (gelation temperature + 10)°C, the ink will gel inside the inkjet head or on the nozzle surface, which will likely result in a decrease in ink ejection properties. On the other hand, if the temperature of the ink inside the inkjet head exceeds (gelation temperature + 30)°C, the ink will become too hot, which may cause the ink components to deteriorate.
[0162] The method for heating the ink is not particularly limited. For example, at least one of the ink supply system, such as the ink tank constituting the head carriage, the supply pipe, and the anterior ink tank immediately before the head, the piping with a filter, and the piezo head can be heated by a panel heater, a ribbon heater, or heated water. From the viewpoints of printing speed and image quality, the volume of ink droplets when ejected is preferably within the range of 2 to 20 pL.
[0163] The printed circuit board is not particularly limited, but examples thereof include copper-clad laminates of all grades (FR-4, etc.) made of materials such as paper phenol, paper epoxy, glass cloth epoxy, glass polyimide, glass cloth / non-woven cloth epoxy, glass cloth / paper epoxy, synthetic fiber epoxy, copper-clad laminates for high-frequency circuits made of fluorine-polyethylene-PPO-cyanate ester, and other materials, as well as polyimide films, PET films, glass substrates, ceramic substrates, wafer plates, stainless steel plates, etc.
[0164] Step (2): In step (2), the ink deposited in step (1) is irradiated with actinic rays to temporarily cure the ink. The actinic rays can be selected from, for example, electron beams, ultraviolet rays, α rays, γ rays, and X-rays, with ultraviolet rays being preferred. The ultraviolet rays can be irradiated at a wavelength of 395 nm using, for example, a water-cooled LED manufactured by Phoseon Technology. Using an LED as the light source can prevent poor ink curing due to the ink melting due to the radiant heat of the light source.
[0165] The ultraviolet irradiation is carried out by using ultraviolet rays having a wavelength in the range of 370 to 410 nm, and the peak irradiance on the surface of the solder resist pattern is preferably 0.5 to 10 W / cm. 2 in the range of 1 to 5 W / cm 2 In order to prevent radiant heat from being irradiated onto the ink, the amount of light irradiated onto the solder resist pattern should be within the range of 500 mJ / cm. 2 The irradiation with actinic rays is preferably carried out within 0.001 to 300 seconds after the ink has landed, and more preferably within 0.001 to 60 seconds in order to form a high-definition solder resist pattern.
[0166] Step (3): In step (3), after the temporary curing in step (2), the ink is further heated to fully cure it. The heating method is preferably, for example, placing the ink in an oven set to a temperature in the range of 110 to 180°C for 10 to 60 minutes.
[0167] The ink used in the present invention can be used as an adhesive, a sealant, a circuit protectant, etc. for electronic components, in addition to being used as an ink for forming the above-mentioned solder resist pattern.
[0168] In the present invention, the location where the solder resist pattern is provided is not particularly limited, but as described above, the effects of the present invention are particularly significant when the solder resist pattern is formed across different components or across a component with unevenness.
[0169] 2. Inkjet printing device The functions of the basic components of a multi-pass inkjet printing apparatus (also referred to as an "inkjet printing apparatus" or "inkjet recording apparatus") that can be used in the present invention will be described below.
[0170] FIG. 8 is a schematic diagram showing a multi-pass inkjet printing apparatus 1; A is a front view and B is a top view. This inkjet printing device 1 is basically a printing device that ejects ink using a multi-pass method in which a head 3 moves back and forth to perform overlapping printing, and is equipped with a carriage 2 to which the head is attached, an X-direction linear stage 4 that moves the carriage 2, a table 5 on which a substrate is placed, and a Y-direction linear stage 6 that moves the table 5.
[0171] The inkjet printing device 1 performs printing by moving a head 3 in the X direction and a table 5 on which a substrate is placed in the Y direction. Although not shown, the inkjet printing apparatus 1 also includes a device for controlling the ejection of ink from the head 3 and a computer for controlling the XY stage. The computer for controlling the XY stage controls the operation of the XY stage based on image data. The computer includes a CPU (Central Processing Unit), a ROM (Read Only Memory), and a RAM (Random Access Memory).
[0172] Printing in the X direction is performed by mounting a carriage 2 to which a head 3 is attached on an X-direction linear stage 4, and moving the carriage 2 to a desired position by a computer that controls the XY stage. Printing in the Y direction is performed by moving table 5, on which the substrate is placed, in the Y direction, and ejecting ink from the head as the substrate passes under the head. An encoder installed on linear stage 6 in the Y direction works in conjunction with a device that controls the ejection of ink from head 3, and ink is ejected at the resolution of the image data according to the encoder signal.
[0173] When printing at a resolution higher than the resolution of the head in the X direction, printing is performed by moving the head in the X direction multiple times. For example, when printing at 2400 dpi with one inkjet head with a resolution of 600 dpi, the head prints the first scan in the Y direction, then moves 10.6 μm (equivalent to one pixel at 2400 dpi) in the X direction and prints the second scan in the Y direction.The head then moves 10.6 μm in the X direction to print the third scan in the Y direction, then moves 10.6 μm in the X direction to print the fourth scan in the Y direction, completing the process.
[0174] In the above, printing is performed in only one direction of transport, but printing can also be performed in both directions (called bidirectional printing). Also, if the printing area is larger than the head width, printing is performed by moving the head width in the X direction.
[0175] After further research into inkjet printing devices, the inventors found that the main scanning direction and sub-scanning direction of the ink ejection device do not have to be perpendicular or parallel to the nozzle row, and that streaks and unevenness are less likely to occur whether only one of the ink ejection device and the substrate as the printing medium moves to form a pattern, or whether both move to form a pattern.
[0176] Hereinafter, other multi-pass inkjet printing devices that can be used in the present invention will be described. The ink ejection device (synonymous with the above-mentioned "head") has a plurality of nozzle holes for ejecting ink. These nozzle holes are preferably aligned in a row, but the nozzle row does not have to be perpendicular or parallel to the main scanning direction (synonymous with the above-mentioned "Y direction") and sub-scanning direction (synonymous with the above-mentioned "X direction") of the head, and is not particularly limited.
[0177] 41 shows a printing method in which the nozzle row direction is neither perpendicular nor parallel to either the X direction nor the Y direction, but is oblique. An inkjet printing apparatus with an oblique nozzle row can also be used in the pattern formation method of the present invention.
[0178] Figure 42 shows a printing method in which the orientation of the ink ejection device itself is neither perpendicular nor parallel to either the X or Y direction, but is oblique. By appropriately changing the angle between the ink ejection device and the main scanning direction, the spacing between the formed dots can be changed, thereby increasing nozzle resolution without adding additional ink ejection devices. This type of inkjet printing device can also be used in the pattern formation method of the present invention.
[0179] Furthermore, in the inkjet printing apparatus 1, printing is performed by moving the head in the X direction and the substrate in the Y direction. However, inkjet printing apparatuses in which the head moves in the Y direction and the substrate moves in the X direction, inkjet printing apparatuses in which the substrate moves in both the X and Y directions, and inkjet printing apparatuses in which the head moves in both the X and Y directions can also be used in the pattern formation method of the present invention.
[0180] Figure 34 shows a method for printing with the inkjet printing device 1. In one scan, the head is fixed, and as the substrate moves in the direction of the arrow and passes under the head, ink droplets are ejected from the head, causing the head to move in the main scanning direction relative to the substrate in terms of their positional relationship. When printing at a resolution higher than the resolution of the head, in the second scan, the head moves in the direction of the arrow, and the substrate moves again in the direction of the arrow to eject ink droplets. This process is repeated until printing is complete.
[0181] In the inkjet printing apparatus 100 shown in FIG. 33, the carriage 2 to which the head 3 is attached is mounted on a linear stage 6 in the Y direction, and is moved to a desired position by a computer that controls the XY stage. As a printing method in the X direction, after printing in the main scanning direction in the Y direction, the table 5 on which the substrate is placed moves in the X direction, and the next printing in the main scanning direction in the Y direction is performed. As with the inkjet printing device 1, an encoder installed on the X-direction linear stage 4 works in conjunction with a device that controls the ejection of ink from the head 3, and ink is ejected at the resolution of the image data according to the encoder signal.
[0182] Figure 35 shows a method for printing with the inkjet printing device 100. In one scan, the head moves in the main scanning direction over a fixed substrate, ejecting ink droplets. Next, in the second scan, the substrate moves in the direction of the arrow, causing the head to move relatively in the sub-scanning direction in terms of the positional relationship between the substrate and head. Then, the ink ejection device moves again in the main scanning direction over the fixed substrate, ejecting ink droplets. This process is repeated until printing is complete.
[0183] Figure 36 shows a method of printing using an inkjet printing device in which the substrate moves in both the X and Y directions. In one scan, the head is fixed, and as the substrate moves in the direction of the arrow and passes under the head, ink droplets are ejected from the head, causing the head to move in the main scanning direction relative to the positional relationship between the substrate and the head. Next, in the second scan, the substrate moves in the direction of the arrow, causing the head to move in the sub-scanning direction relative to the positional relationship between the substrate and the head. Then, the ink ejection device moves in the main scanning direction over the fixed substrate again, ejecting ink droplets. This process is repeated until printing is completed.
[0184] Figure 37 shows how printing is performed with an inkjet printing device in which the head moves in both the X and Y directions. In one scan, the head moves in the main scanning direction over a fixed substrate, ejecting ink droplets. Next, in the second scan, the head moves in the direction of the arrow, and the substrate is again moved in the direction of the arrow, ejecting ink droplets. This process is repeated until printing is complete.
[0185] In addition, by arranging multiple heads and attaching them to the carriage, the number of scans can be reduced, shortening printing time.
[0186] Figure 40 shows a method for performing divided printing at a resolution of 2400 dpi using four inkjet heads with a nozzle resolution of 600 dpi. The four inkjet heads are mounted on the carriage, staggered so that the pitch is 2400 dpi.
[0187] As shown in Figures 30A and 30B, when using one inkjet head with a nozzle resolution of 600 dpi to print at a resolution of 2400 dpi using four divided image data, 16 scans are required. However, as shown in Figure 40, when four inkjet heads are installed and offset, the steps of scans 1 to 4 in Figure 30A can be performed in one scan, so printing can be completed in a total of four scans, thereby shortening the printing time.
[0188] One method of printing using the random multi-drop method in the present invention is to use a random gray image with multiple gradations and control the amount of liquid corresponding to the gradation or density of each pixel, as described above.
[0189] For example, by applying a noise filter to a 256-level 30% gray image in Adobe Photoshop, it is possible to create random multi-level gray image data as shown in Figure 16. Based on this image data, the ink volume is allocated as follows: for example, 7 pL for the black areas from 0 to 86 levels, 3.5 pL for the gray areas from 87 to 172 levels, and 0 pL for the white areas from 173 to 255 levels.
[0190] Dots with different amounts of liquid corresponding to each pixel can be formed by changing the ejection waveform when ink is ejected from the nozzle, or by forming multiple dots for the same pixel.
[0191] For example, in the case of the above liquid volume distribution, an inkjet head with a liquid volume of 3.5 pL is used, and dots can be formed using different liquid volumes by specifying that two drops are ejected for black areas of 0 to 86 gradations, one drop is ejected for gray areas of 87 to 172 gradations, and no ejection is made for white areas of 173 to 255 gradations.
[0192] Methods for printing using the random multi-pass method in the present invention include a method of dividing the original image into multiple random, non-overlapping images and printing them, and a method of randomizing the impact of ink using an inkjet ejection control system using a function such as a random number.
[0193] The split image data can be created using image processing software such as Adobe Photoshop 2020. For example, a grayscale image is converted to two-tone monochrome using Photoshop's error diffusion method to create a random black and white image. The image is then inverted to create an inverted black and white image. [Example]
[0194] The present invention will be specifically described below with reference to examples, but the present invention is not limited to these examples. In the examples, when "parts" or "%" is used, it means "parts by mass" or "% by mass", respectively, unless otherwise specified.
[0195] Example 1 [Ink preparation] <Preparation of pigment dispersion> The dispersant and dispersion medium shown below were placed in a stainless steel beaker, heated on a hot plate at 65°C for 1 hour while stirring and dissolving, and then cooled to room temperature. The pigment was added, and the mixture was placed in a glass bottle together with 200 g of zirconia beads with a diameter of 0.5 mm and sealed. This was dispersed in a paint shaker until the desired particle size was reached, after which the zirconia beads were removed.
[0196] (Yellow pigment dispersion) Dispersant 1: EFKA7701 (manufactured by BASF) 5.6 parts by mass Dispersant 2: Solsperse 22000 (manufactured by Lubrizol Japan) 0.4 parts by mass Dispersion medium: Dipropylene glycol diacrylate (containing 0.2% UV-10) 80.6 parts by mass Pigment: PY185 (BASF, Paliotol Yellow D1155) 13.4 parts by mass
[0197] (cyan pigment dispersion) Dispersant: EFKA7701 (BASF) 7 parts by mass Dispersion medium: Dipropylene glycol diacrylate (containing 0.2% UV-10) 70 parts by mass Pigment: PB15:4 (Dainichi Seika Chemicals, Chromofine Blue 6332JC) 23 parts by mass
[0198] The prepared dispersions were mixed according to the following formula, and then filtered through a 3 μm Teflon (registered trademark) membrane filter manufactured by ADVATEC to prepare an ink. The viscosity (η1) of the ink when ejected at 75°C was 10 mPa·s, and the viscosity (η2) at room temperature (25°C), which is the temperature at the time of impact, was 1×10 4 mPa·s. In other words, the viscosity ratio η2 / η1 was 1000. The same ink was used in the examples and comparative examples described below.
[0199] Yellow pigment dispersion 3 parts by mass Cyan pigment dispersion 1 part by mass Distearyl ketone 1.1 parts by mass Behenyl behenate 1.2 parts by mass Epoxy ester (M-600A: manufactured by Kyoei Chemical Co., Ltd.) 30 parts by mass Trixene BI7961 (manufactured by LANXESS) 10 parts by mass Urethane acrylate (AH-600: manufactured by Kyoei Chemical Co., Ltd.) 10 parts by mass M222 (Miwon) 27.7 parts by mass EM2382 (manufactured by Choko Kagakusha) 10 parts by mass Photoinitiator: Diphenyl(2,4,6-trimethylbenzoyl)phosphine oxide (TPO) 3 parts by mass Photoinitiator coagent: 2-isopropylthioxanthone (ITX) 3 parts by mass
[0200] [Print Pattern] Using a linear XY stage equipped with one inkjet head (KM1800iSHC-C: manufactured by Konica Minolta, resolution 600 dpi) and a control system (IJCS-1: manufactured by Konica Minolta), a print pattern was printed on the optical PET film substrate under the following conditions, and 500 mJ / cm was applied using a UV-LED light source with a wavelength of 395 nm. 2 The resulting material was exposed to light and cured at an irradiation energy of 100x to produce printed material 1. An optical microscope photograph of printed material 1 at 100x magnification is shown in Figure 13.
[0201] Printing pattern: A 70mm x 70mm square solid area is printed with a circle of 100 to 1000μm diameter. Image data of solid areas: See Figure 12 (256-level 50% gray converted to random multi-level gray using the noise filter process in Adobe Photoshop 2020, an image processing software). Resolution: 2400 dpi x 3000 dpi (feed direction) Number of passes: 4 (600 dpi x 4) Head nozzle row movement distance between passes: 10.6 μm Printing method: Block Liquid volume distribution: 0 to 86 gradations 3.5 pL 87~255 gradation 0pL (no droplet application) Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0202] Example 2 Using a linear XY stage equipped with one inkjet head (KM1800iSHC-C, manufactured by Konica Minolta, resolution 600 dpi) and a control system (IJCS-1, manufactured by Konica Minolta), a print pattern was printed on an optical PET film substrate under the following conditions, as shown in FIG. 14, by moving the 600 dpi head 8 times in the transport direction and 1 time in the head nozzle row direction in the order of the numbers, using the random multi-pass method shown in an example of this embodiment, and irradiating 500 mJ / cm with a UV-LED light source with a wavelength of 395 nm. 2 Printed material 2 was produced by exposing and curing with an irradiation energy of 1000 kJ / cm.
[0203] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid area: See Figure 15 Resolution: 1200 dpi x 1200 dpi (feed direction) Number of passes: 8 (600 dpi x 4 x 2) Head nozzle row movement distance between passes: 21.2 μm Printing method: Random pass Liquid volume distribution: 10.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0204] Example 3 Printed matter 3 was produced in the same manner as in Example 1, except that the printing conditions were changed to the following conditions. Figure 17 is an optical microscope photograph of printed matter 3 at 100x magnification. Figure 19 is an optical microscope photograph of a φ500 μm circle at 100x magnification.
[0205] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of the cutout circle: See Figure 18 (no outline of the cutout circle) Image data of solid areas: See Figure 16 (256-level 30% gray converted to random multi-level gray using the noise filter process in Adobe Photoshop 2020, an image processing software). Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 4 (600 dpi x 4) Head nozzle row movement distance between passes: 10.6 μm Printing method: Block Liquid volume distribution: 0 to 86 gradations, 7 pL 87~172 gradations 3.5pL 173~255 gradation 0pL (no droplet application)
[0206] Example 4 Printed matter 4 was produced in the same manner as in Example 3, except that the printing conditions were changed to the following conditions. Figure 21 is an optical microscope photograph of a 500 µm diameter circle of printed matter 4 at 100x magnification. Image data of the circle: Figure 20 (the edge of the circle is unified in gray gradation 155 so that each pixel has the same amount of liquid)
[0207] Example 5 Printed matter 5 was produced in the same manner as in Example 3, except that the substrate was changed to a printed circuit board made of glass epoxy with a Cu wiring pattern of 15 μm thick Cu and L / S (line / space) = 100 μm / 100 μm. FIG. 22 is an enlarged schematic diagram of a printed circuit board with a Cu wiring pattern, and FIG. 23 shows the image data to be printed on it.
[0208] Example 6 Printed matter 6 was produced in the same manner as in Example 5, except that the image data was changed to a liquid amount of 10.5 pL for one pixel in the portion in contact with the Cu wiring pattern, as shown in FIG.
[0209] Example 7 Printed matter 7 was produced in the same manner as in Example 5, except that the image data was changed to a continuous thickness, with the liquid volume for one pixel in contact with the Cu wiring pattern being 10.5 pL and the liquid volume for one pixel around that being 7 pL, as shown in Figure 25.
[0210] Example 8 Printed matter 8 was produced in the same manner as in Example 5, except that the printing conditions were changed to the following conditions. Figure 27 is an optical microscope photograph of printed matter 8 at 100x magnification.
[0211] Image data of solid areas: See Figure 26 (256 levels of gray converted to random multi-levels using the same filter processing as above) Resolution: 1200 dpi x 1200 dpi (feed direction) Number of passes: 2 (600 dpi x 2) Head nozzle row movement distance between passes: 21.2 μm Printing method: Block Liquid volume distribution: 0 to 86 gradations, 14 pL 87~172 gradations 7pL 173~255 gradation 0pL (no droplet application)
[0212] Example 9 Using a linear XY stage equipped with one inkjet head (KM1800iSHC-C: manufactured by Konica Minolta, nozzle resolution 600 dpi) and a control system (IJCS-1: manufactured by Konica Minolta), a print pattern was printed on the optical PET film substrate under the following conditions, and 500 mJ / cm was applied using a UV-LED light source with a wavelength of 395 nm. 2 The printed matter 11 was produced by exposing and curing the ink with an irradiation energy of 1000 kJ / cm2.
[0213] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid areas: See Figure 31, original image data Resolution: 2400 dpi x 2400 dpi (feed direction) Print direction (main scanning direction): Unidirectional printing Print direction (sub-scanning direction): Forward printing Number of passes: 8 (600 dpi x 8) Head nozzle row movement distance between passes: 10.6 μm Printing method: Random multi-pass, see Figure 31 Liquid volume distribution: 3.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0214] Example 10 [Divided Print (2 image divisions)] As shown in Figure 29, the image data for the solid area was divided using image processing software so that the pixels would not overlap when printed, and so that the pixels would not follow the order of the rows and columns in which they were arranged, nor would they have any fixed periodicity, to create divided image data No. 1 and No. 2. Each divided image data was then printed in order, overlapping each other, under the following conditions. Printed matter 12 was produced in the same manner as in Example 9, except that the image data and printing conditions were changed to the following conditions.
[0215] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid area: See Figure 29, original image data Number of image divisions: 2 Divided image data: See Figure 29, Divided Image Data Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 8 (600 dpi x 8) Print direction (main scanning direction): Unidirectional printing Print direction (sub-scanning direction): Forward printing Head nozzle row movement distance between passes: 10.6 μm Printing method: Random multi-pass, see Figure 29 Liquid volume distribution: 3.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0216] Example 11 [Divided print (4 divided images)] Printed matter 13 was produced in the same manner as in Example 10, except that the number of divisions of the image data and the printing conditions were changed to the following conditions.
[0217] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid areas: See Figure 30A and B, original image data Number of image divisions: 4 Divided image data: See Figures 30A and 30B, Divided Image Data Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 16 (600 dpi x 16) Print direction (main scanning direction): Unidirectional printing Print direction (sub-scanning direction): Forward printing Head nozzle row movement distance between passes: 10.6 μm Printing method: Random multi-pass, see Figures 30A and B Liquid volume distribution: 3.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0218] Example 12 [Bidirectional printing] Printed matter 14 was produced in the same manner as in Example 10, except that the printing conditions were changed to the following conditions.
[0219] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid area: See Figure 38, original image data Number of image divisions: 2 Divided image data: See Figure 38, Divided Image Data Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 8 (600 dpi x 8) Print direction (main scanning direction): Bidirectional printing Print direction (sub-scanning direction): Forward printing Head nozzle row movement distance between passes: 10.6 μm Printing method: Random multi-pass, see Figure 38 Liquid volume distribution: 3.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0220] Example 13 [Forward / reverse mixed printing] Printed matter 15 was produced in the same manner as in Example 10, except that the printing conditions were changed to the following conditions.
[0221] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid area: See Figure 39, original image data Number of image divisions: 2 Divided image data: See Figure 39, Divided Image Data Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 8 (600 dpi x 8) Print direction (main scanning direction): Unidirectional printing Print direction (sub-scanning direction): forward and reverse mixed printing Head nozzle row movement distance between passes: 10.6 μm 21.2 μm (between scans 3 and 4, between scans 7 and 8) Printing method: Random multi-pass, see Figure 39 Liquid volume distribution: 3.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0222] Example 14 [Random drop multi-pass method and random multi-pass method] Using a linear XY stage equipped with one inkjet head (KM1800iSHC-C: manufactured by Konica Minolta, nozzle resolution 600 dpi) and a control system (IJCS-1: manufactured by Konica Minolta), a print pattern was printed on the optical PET film substrate under the following conditions, and 500 mJ / cm was applied using a UV-LED light source with a wavelength of 395 nm. 2 The printed matter 16 was produced by exposing and curing the ink with an irradiation energy of 1000 kJ / cm2.
[0223] The printed matter 16 was produced by allocating the amount of liquid corresponding to the gradation of each pixel of the image data.
[0224] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid areas: See Figure 43, image data (256-level 30% gray converted to random multi-level gray using the noise filter process in Adobe Photoshop 2020, an image processing software). Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 8 (600 dpi x 8) Print direction (main scanning direction): Unidirectional printing Print direction (sub-scanning direction): Forward printing Head nozzle row movement distance between passes: 10.6 μm Printing method: Random multi-pass, see Figure 43 Liquid volume distribution: 0 to 86 gradations, 7 pL 87~172 gradations 3.5pL 173~255 gradation 0pL (no droplet application) Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0225] Example 15 [Divided printing on a printed circuit board (2 divided images)] Printed matter 17 was produced in the same manner as in Example 10, except that the substrate was changed to a printed circuit board made of glass epoxy with a Cu wiring pattern of 15 μm thick Cu and L / S (line / space) = 100 μm / 100 μm.
[0226] Comparative Example 1 Printed matter 9 was produced in the same manner as in Example 1, except that the printing conditions were changed to the following conditions. Figure 28 is an optical microscope photograph of printed matter 9 at 100x magnification.
[0227] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid area: See Figure 15 Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 4 (600 dpi x 4) Head nozzle row movement distance between passes: 10.6 μm Printing method: Block Liquid volume distribution: 3.5 pL across the entire surface
[0228] Comparative Example 2 Printed matter 10 was produced in the same manner as in Comparative Example 1, except that the substrate was changed to a printed circuit board made of glass epoxy with a Cu wiring pattern of 15 μm thick Cu and L / S (line / space) = 100 μm / 100 μm. FIG. 22 is an enlarged schematic diagram of a printed circuit board with a Cu wiring pattern, and FIG. 23 shows the image data to be printed on it.
[0229] Comparative Example 3 Printed matter 18 was produced in the same manner as in Example 10, except that the printing conditions were changed to the following conditions.
[0230] Printing pattern: A 70mm x 70mm square with a 100-1000μm diameter circle Image data of solid areas: See Figure 44, original image data Number of image divisions: 2 Divided image data: See Figure 44, Divided Image Data Resolution: 2400 dpi x 2400 dpi (feed direction) Number of passes: 8 (600 dpi x 8) Print direction (main scanning direction): Unidirectional printing Print direction (sub-scanning direction): Forward printing Head nozzle row movement distance between passes: 10.6 μm Printing method: Interleaved, see Figure 44 Liquid volume distribution: 3.5 pL across the entire surface Head temperature (temperature when ink is ejected): 75°C Substrate temperature (temperature when ink lands): Room temperature (25°C)
[0231] [evaluation] <Story evaluation> The pattern on the obtained print was visually inspected and evaluated for the occurrence of streaks. ◎: No streaks are observed 〇: There is a slight sense of streaking, but it is not noticeable △: Streaks can be felt ×: Streaks are noticeable
[0232] <Glossiness> Using a handy gloss meter (PG-II, manufactured by Nippon Denshoku Industries Co., Ltd.), the 60-degree gloss was measured in directions parallel and perpendicular to the conveyance direction. If streaks occur, the gloss values in the parallel and perpendicular directions will differ significantly, but if streaks do not occur, the values in the parallel and perpendicular directions will be roughly the same. If the gloss values in the parallel and perpendicular directions differ by 3 or more, the streaks will become noticeable.
[0233] <Average film thickness> Using a film thickness meter (Digimicro MH-15M+TC-101A: manufactured by Nikon Corporation), measurements were taken at five points, namely the four corners and the center of the 70 mm x 70 mm square printed pattern area, and the average film thickness was calculated.
[0234] <Pinhole> The printed pattern was observed under an optical microscope to evaluate the presence or absence of pinholes. Localized pinholes can deteriorate the adhesion of the bulk.
[0235] <Pattern Formation> The φ500 μm hole was observed under an optical microscope to evaluate the pattern formability. ◎: The outline of the cutout circle is almost identical to the printed image ◯: The outline of the punched circle is slightly uneven, but this does not pose a problem in terms of pattern formation. △: There are many irregularities on the outline of the punched circle, and pattern formation is poor. ×: The outline of the punched circle is crushed and the pattern is not formed.
[0236] The following evaluations were carried out for Examples 5 to 8 and Comparative Example 2, which used printed circuit boards as the substrate.
[0237] <Adhesion> The printed pattern was cut in a grid pattern according to the cross-cut method of JIS K5600, and adhesive tape was applied and peeled off to observe the remaining adhesion of the printed pattern, thereby evaluating the adhesion. ◎: Adhesion remaining rate 100% 〇: Adhesion residual rate is 80% or more but less than 100% △: Adhesion remaining rate is 60% or more but less than 80% ×: Adhesion remaining rate less than 60%
[0238] <Solder resistance> After immersion in a 260°C solder bath for 10 seconds three times, a checkerboard pattern was made in the printed pattern area according to the cross-cut method of JIS K5600, adhesive tape was applied, and the tape was peeled off to observe the remaining adhesion of the printed pattern and evaluate solder resistance. ◎: Adhesion remaining rate 100% 〇: Adhesion residual rate is 80% or more but less than 100% △: Adhesion remaining rate is 60% or more but less than 80% ×: Adhesion remaining rate less than 60%
[0239] <Step tracking ability> After immersion in a 260°C solder bath for 10 seconds three times, a grid of cuts was made in accordance with the cross-cut method of JIS K5600 so as to span both the areas with and without the Cu wiring pattern, adhesive tape was applied and peeled off to observe the peeling state of the printed pattern and evaluate adhesion. If the film thickness becomes thin at the stepped areas of the Cu wiring pattern, adhesion at the stepped areas will deteriorate. ◎: No peeling at the step with the Cu pattern ○: Thin linear peeling is observed in some areas where there is a difference in level with the Cu pattern. ○△: Continuous linear peeling is observed at the step with the Cu pattern △: Peeling is noticeable at the step with the Cu pattern, and the Cu surface is exposed. ×: Peeling occurs over the entire surface at the step with the Cu pattern
[0240] The above experimental conditions and evaluation results are summarized in Tables I and II.
[0241] [Table 1]
[0242] [Table 2]
[0243] As is clear from the evaluation results shown in Tables I and II above, the patterns formed by the pattern forming method of the present invention are superior to the comparative examples in each of the above evaluation items.
[0244] For the random multi-pass method, it is clear that by performing divided printing, bidirectional printing, or forward / reverse mixed printing, streaks and mottling are further reduced, resulting in excellent pattern formability. It is also clear that by applying the random drop multi-pass method to the random multi-pass method, streaks and mottling are reduced. [Industrial Applicability]
[0245] The above-described means of the present invention can provide a pattern formation method using an inkjet system that is highly precise and free of streaks and mottled unevenness, that has uniform insulating and conductive properties even when ink containing functional materials such as insulators and conductors is used, and that provides good adhesion of the coating film. [Explanation of symbols]
[0246] 1. Inkjet printing device 2 carriages 3 heads 4 X-direction linear stages 5 tables 6 Y-direction linear stage 7 Printed circuit board 8 Copper wiring section (height 15 μm, width 100 μm) 9. Ink ejection device 10 Substrate (print media) 100 Inkjet printing device
Claims
1. A pattern forming method by inkjet printing based on image data of a pattern, comprising: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The amount of ink used to form a coating of dots constituting a pattern formed on the substrate is determined in accordance with the gradation or density of each pixel constituting the image data of the pattern, The dots are controlled so that they do not have a fixed periodicity with the adjacent dots, and the entire pattern coating is not uniform. A pattern forming method comprising:
2. A pattern forming method by inkjet printing based on image data of a pattern, comprising: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots where the droplets land so as not to have a constant periodicity in the main scanning direction and the sub-scanning direction of the ink ejection device and not to be continuous in the main scanning direction; The amount of ink used to form the coating of dots constituting the pattern formed on the substrate corresponds to the gradation or density of each pixel constituting the image data of the pattern, does not have a constant periodicity with adjacent dots, and is controlled so that the coating of the pattern as a whole is not uniform. A pattern forming method comprising:
3. The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and The positions of the dots where the droplets land are controlled so as not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity.
2. The pattern forming method according to claim 1.
4. dividing the image data of the pattern into a plurality of parts so that pixels do not overlap when printed in layers, and so that the positions of the dots where the droplets land do not have a constant periodicity in the main scanning direction and the sub-scanning direction of the ink ejection device and are not continuous in the main scanning direction; The divided image data is printed in a sequentially overlapping manner.
3. The pattern forming method according to claim 2.
5. The ink droplets are not ejected at some of the pixels constituting the image data of the pattern.
4. The pattern forming method according to claim 1 or 3.
6. the ink ejection device moves back and forth relatively in the main scanning direction, Ink droplets are ejected on both the forward and backward passes.
5. The pattern forming method according to claim 2 or 4.
7. The ink ejection device moves relatively in a combination of forward and reverse directions with respect to the sub-scanning direction.
5. The pattern forming method according to claim 2 or 4.
8. The amount of ink per dot forming the edge of the patterned portion on the border between the patterned portion and the non-patterned portion formed on the substrate is controlled to be approximately the same.
5. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
9. For a substrate having a convex portion, the amount of ink per dot forming the edge of the convex portion is controlled to be approximately the same.
5. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
10. For a substrate having a convex portion, the amount of ink liquid per dot is controlled so that the dots forming the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion are greater than the dots forming the edge of the convex portion.
5. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
11. For a substrate having a convex portion, the amount of liquid in the dots that form the outer edge surface of the boundary between the inside and outside of the bottom surface of the convex portion is controlled so as to change continuously from the surface in contact with the convex portion to the surface toward the outside.
5. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
12. A pattern formation method using an inkjet printing method based on image data of a pattern, comprising: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; The amount of ink per dot forming the edge of the patterned portion on the border between the patterned portion and the non-patterned portion formed on the substrate is controlled to be approximately the same. A pattern forming method comprising:
13. A pattern formation method using an inkjet printing method based on image data of a pattern, comprising: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; For a substrate having a convex portion, the amount of ink per dot forming the edge of the convex portion is controlled to be approximately the same. A pattern forming method comprising:
14. A pattern forming method by inkjet printing based on image data of a pattern, comprising: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; For a substrate having a convex portion, the amount of ink liquid per dot is controlled so that the dots forming the outer edge of the boundary between the inside and outside of the bottom surface of the convex portion are greater than the dots forming the edge of the convex portion. A pattern forming method comprising:
15. A pattern forming method by inkjet printing based on image data of a pattern, comprising: In a method of forming the pattern, an ink ejection device having a plurality of nozzle holes or a substrate as a printing medium moves a plurality of times, and ink droplets are ejected from the nozzles of the ink ejection device onto the substrate as the printing medium, The ink droplets used to form the coating film of the dots that constitute the pattern formed on the substrate land multiple times, and controlling the positions of the dots at which the droplets land not to follow the order of rows and columns in which the pixels constituting the image data are arranged, and not to have a fixed periodicity; For a substrate having a convex portion, the amount of liquid in the dots that form the outer edge surface of the boundary between the inside and outside of the bottom surface of the convex portion is controlled so as to change continuously from the surface in contact with the convex portion to the surface toward the outside. A pattern forming method comprising:
16. The average thickness of the coating film of the dots constituting the pattern is controlled to be 15 μm or more.
16. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
17. The amount of ink to be deposited is changed in a plurality of ways to form a coating film of each dot constituting the pattern.
16. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
18. The ink is of any one of a hot melt type, a gel type, and a thixotropic type.
16. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
19. As the ink, a solder resist ink is used.
16. The pattern forming method according to claim 1, wherein the first and second electrodes are formed on the first and second electrodes.
20. An inkjet printing device that forms a pattern based on image data of the pattern, A pattern is formed by the pattern forming method according to any one of claims 1 to 4 and claims 12 to 15.
1. An inkjet printing apparatus comprising:
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