Intaglio printing plate and method for manufacturing laminated electronic components

The intaglio plate's optimized geometry with defined ratios and flow paths addresses the issue of non-uniform paste flow, enabling precise thickness control and low surface roughness in printing patterns without altering the paste's properties, achieving surface roughness below 10 nm and preventing edge irregularities.

JP7728215B2Active Publication Date: 2025-08-22TDK CORP
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
JP2022046657
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-23
Publication Date
2025-08-22
Estimated Expiration
2042-03-23

AI Technical Summary

Technical Problem

Conventional intaglio printing plates face challenges in achieving uniform thickness and low surface roughness of printing patterns due to varying ease of printing paste flow, necessitating cumbersome adjustments to the paste's physical properties.

Method used

A printing intaglio plate design with specific ratios of W opening ratio and pitch L/W ratio, along with wavy flow paths and varying bank widths, adjusts pattern thickness without altering the paste's properties, ensuring uniform paste flow and reduced surface roughness.

Benefits of technology

The solution allows for precise control of pattern thickness and surface smoothness by optimizing the intaglio plate's geometry, reducing surface roughness to less than 10 nm and preventing the saddle phenomenon at the pattern edges.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007728215000001
    Figure 0007728215000001
  • Figure 0007728215000002
    Figure 0007728215000002
  • Figure 0007728215000003
    Figure 0007728215000003
Patent Text Reader

Abstract

To provide a printing intaglio capable of adjusting a thickness of a printing pattern without changing physical properties of a printing paste, and capable of suppressing a surface roughness of the printing pattern and a manufacturing method of a laminate type electronic component.SOLUTION: A printing intaglio 11 satisfies, when a ratio of a printing direction bank distance to a sum of the printing direction bank distance and a printing direction bank width in a cell 13 is defined as a W aperture ratio, and the ratio of the sum of an orthogonal direction bank distance and an orthogonal direction bank width to the sum of the printing direction bank distance and the printing direction bank width in the cell 13 is defined as a pitch L / W ratio, 70%≤W aperture ratio≤90% and 0.65≤pitch L / W ratio≤1.3.SELECTED DRAWING: Figure 3
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a printing intaglio plate and a method for manufacturing a laminated electronic component. [Background technology]

[0002] An example of a conventional intaglio printing plate is the gravure printing screen described in Patent Document 1. In this conventional intaglio printing plate, the ridges that define the cells that make up the printing pattern are cut at one or several locations in order to control the tendency of the printing paste to flow. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Special Publication No. 39-16402 Summary of the Invention [Problem to be solved by the invention]

[0004] In intaglio printing plates, there is a demand for technology that can reduce the surface roughness of the printing pattern formed on the printing substrate. However, in the conventional intaglio printing plates described above, although some of the ridges are cut, it is believed that there is a large difference in the ease of flow of the printing paste between the areas where the ridges are cut and the areas surrounded by the ridges. Therefore, the thickness of the printing paste filled into the cells is likely to vary, and this is insufficient to obtain a printing pattern with low surface roughness.

[0005] Furthermore, in actual printing situations, it is possible to imagine the formation of print patterns with various thicknesses on a substrate depending on the purpose and application. One way to adjust the thickness of a print pattern is to change the physical properties of the print paste. However, changing the physical properties of the print paste each time is cumbersome, and therefore a technology that can adjust the thickness of a print pattern without changing the physical properties of the print paste is also desired.

[0006] The present disclosure has been made to solve the above-mentioned problems, and aims to provide a printing intaglio plate and a method for manufacturing a laminated electronic component that can adjust the thickness of the printing pattern without changing the physical properties of the printing paste and can reduce the surface roughness of the printing pattern. [Means for solving the problem]

[0007] A printing intaglio plate according to one aspect of the present disclosure comprises a plurality of cells partitioned by printing direction banks extending in the printing direction and orthogonal direction banks perpendicular to the printing direction, the printing direction banks having a first cutout that connects adjacent cells in the orthogonal direction, and the orthogonal direction banks having a second cutout that connects adjacent cells in the printing direction, and when the ratio of the printing direction bank distance to the sum of the printing direction bank distance and printing direction bank width in a cell is defined as the W opening ratio, and the ratio of the sum of the orthogonal direction bank distance and the orthogonal direction bank width to the sum of the printing direction bank distance and printing direction bank width in a cell is defined as the pitch L / W ratio, the printing intaglio plate satisfies 70%≦W opening ratio≦90% and 0.65≦pitch L / W ratio≦1.3.

[0008] This printing intaglio plate allows the thickness of the print pattern to be adjusted by changing the W aperture ratio without changing the physical properties of the printing paste. By setting the W aperture ratio to 70% or more, the area of ​​the printing direction banks is not excessive relative to the cells, and the printing paste flows sufficiently to fully fill the non-transferred areas caused by the printing direction banks. By setting the W aperture ratio to 90% or less, the fluidity of the printing paste in the orthogonal direction is maintained, and the non-transferred areas caused by the orthogonal portions of the printing direction banks and the orthogonal portions are fully filled. Furthermore, with this printing intaglio plate, by setting the pitch L / W ratio to 0.65 or more, the distance between the orthogonal banks is sufficiently maintained, and the fluidity of the printing paste can be maintained until the non-transferred areas are filled. By setting the pitch L / W ratio to 1.3 or less, the fluidity of the printing paste in the printing direction can be ensured, and the non-transferred areas caused by the orthogonal portions of the printing direction banks and the orthogonal portions can be quickly filled. As a result, this printing intaglio plate reduces the surface roughness of the formed print pattern.

[0009] The first cutouts adjacent to each other in the printing direction may have approximately the same position in the printing direction relative to the cell, while the first cutouts adjacent to each other in the perpendicular direction may have different positions in the printing direction relative to the cell, and the second cutouts adjacent to each other in the printing direction may have different positions in the perpendicular direction relative to the cell, while the second cutouts adjacent to each other in the perpendicular direction may have approximately the same position in the perpendicular direction relative to the cell.

[0010] According to this configuration, the printing paste flow path in the orthogonal direction between the cells is formed in a wavy shape so as to connect adjacent first cutouts, and the printing paste flow path in the printing direction between the cells is formed in a wavy shape so as to connect adjacent second cutouts. Furthermore, the phases of adjacent printing paste flow paths in the orthogonal direction are approximately the same, and the phases of adjacent printing paste flow paths in the printing direction are approximately the same. This makes the flow of printing paste within the cells uniform, and reduces variations in the thickness of the printing paste filled into the cells. Therefore, the surface roughness of the formed printing pattern can be further reduced.

[0011] The multiple cells include a central cell located at the center in the orthogonal direction and a side end cell located at a side end in the orthogonal direction, and the bank width in the printing direction of the side end cell is larger than the bank width in the printing direction of the central cell, and the opening area of ​​the side end cell may be smaller than the opening area of ​​the central cell.

[0012] By making the bank width of the side edge cells larger in the printing direction than that of the central cells and making the opening area of ​​the side edge cells smaller than that of the central cells, it is possible to prevent stringing of the printing paste in the side edge cells during transfer, thereby preventing the so-called saddle phenomenon, in which the thickness of the printing pattern at the side edges is greater than that at the center.

[0013] The bank width of the side edge cells in the orthogonal direction may be smaller than the bank width of the side edge cells in the printing direction. By reducing the bank width of the side edge cells in the orthogonal direction, it is possible to suppress differences in the amount of paste applied in the printing direction due to the side edge cells. As a result, it is possible to suppress variations in the thickness of the printed pattern at the side edges. In addition, it is also possible to improve the straightness of the printed pattern at the side edges.

[0014] A method for manufacturing a multilayer electronic component according to one aspect of the present disclosure includes a step of forming an internal electrode layer or a step absorption layer using the above-described printing intaglio plate.

[0015] In this method for manufacturing a multilayer electronic component, the thickness of the internal electrode layer or the step absorption layer to be formed can be adjusted by using the intaglio printing plate without changing the physical properties of the printing paste, and the surface roughness of the internal electrode layer or the step absorption layer to be formed can be suppressed. [Effects of the Invention]

[0016] According to the present disclosure, the thickness of the print pattern can be adjusted without changing the physical properties of the print paste, and the surface roughness of the print pattern can be reduced. [Brief explanation of the drawings]

[0017] [Figure 1] FIG. 1 is a schematic perspective view showing a gravure roll to which an intaglio printing plate according to an embodiment of the present disclosure is applied. [Figure 2] FIG. 1 is a plan view showing an intaglio printing plate according to an embodiment of the present disclosure. [Figure 3] FIG. 3 is an enlarged plan view of a main portion showing a central cell of the intaglio printing plate shown in FIG. 2. [Figure 4] 3 is an enlarged plan view of a main part showing a side edge cell of the intaglio printing plate shown in FIG. 2. FIG. [Figure 5] FIG. 10 is a diagram showing the results of an evaluation test regarding the thickness and surface roughness of a printed pattern. [Figure 6] 10 is a graph showing the relationship between W aperture ratio and thickness of a printed pattern. [Figure 7] 10 is a graph showing the relationship between the L opening ratio and the thickness of the print pattern. [Figure 8] 10 is a graph showing the relationship between W aperture ratio and surface roughness of a print pattern. [Figure 9] 10 is a graph showing the relationship between the pitch L / W ratio and the surface roughness of the print pattern. [Figure 10] FIG. 10 is a schematic diagram showing an example of a saddle phenomenon occurring in a print pattern. [Figure 11] 10 is a graph showing the relationship between the W bank width and L bank width of the side end cell and the saddle height. [Figure 12] FIG. 10 is a diagram showing the results of an evaluation test regarding the saddle height and side edge straightness of a print pattern. [Figure 13] FIG. 10 is a schematic diagram showing an evaluation index for side edge straightness. DETAILED DESCRIPTION OF THE INVENTION

[0018] Hereinafter, preferred embodiments of a printing intaglio plate and a method for producing a multilayer electronic component according to one aspect of the present disclosure will be described in detail with reference to the drawings.

[0019] 1 is a schematic perspective view showing a gravure roll to which a printing intaglio plate according to an embodiment of the present disclosure is applied. The gravure roll 1 shown in the figure is a device used in the manufacturing process of multilayer electronic components such as multilayer ceramic capacitors. In the manufacturing process, the gravure roll 1 is used to transfer the pattern of internal electrode layers to ceramic green sheets that constitute the base body of the multilayer electronic component.

[0020] A printing intaglio plate 11 is used to transfer the pattern of the internal electrode layer. When printing is performed with a gravure roll 1 using the printing intaglio plate 11, first, the gravure roll 1 with the printing intaglio plate 11 set thereon is immersed in a tank filled with printing paste. This causes the printing paste to adhere to the entire printing intaglio plate 11. Next, the gravure roll 1 is rotated, and the doctor blade 2 is brought into contact with the printing intaglio plate 11 that has been pulled out of the tank, while oscillating left and right. This scrapes off excess printing paste adhering to the printing intaglio plate 11, and an appropriate amount of printing paste is filled into each cell 13 (see Figure 2, etc.).

[0021] After filling each cell 13 of the printing intaglio plate 11 with printing paste, the ceramic green sheet is sandwiched between the gravure roll 1 and the impression cylinder, and the gravure roll 1 and the impression cylinder are rotated while applying a predetermined pressure. This causes the printing paste on the printing intaglio plate 11 to be transferred to the ceramic green sheet in a predetermined pattern. During transfer, the printing paste does not directly adhere to the areas corresponding to the banks that make up each cell 13, but over time the surrounding printing paste gradually fills in the non-transferred areas, and ultimately a roughly rectangular internal electrode layer pattern is formed on the ceramic green sheet.

[0022] The printing intaglio plate 11 can be used not only for forming internal electrode layers, but also for forming step absorption layers. The step absorption layer is a layer used to fill in the step between sheets equal to the thickness of the internal electrode layers when stacking ceramic green sheets on which internal electrode layers have been formed. The step absorption layer is printed around the internal electrode layers, for example, with a thickness equivalent to that of the internal electrode layers. The printing intaglio plate 11 can also be applied to printing methods other than gravure printing. The printing intaglio plate 11 can also be used to form circuits and electrodes for other electronic devices such as displays.

[0023] The configuration of the intaglio printing plate 11 will be described in detail below.

[0024] 2 is a plan view showing an intaglio printing plate according to one embodiment of the present disclosure. As shown in the figure, the intaglio printing plate 11 has a rectangular shape with its long sides extending in the printing direction (the direction corresponding to the circumferential direction of the gravure roll 1) and its short sides extending in a direction perpendicular to the printing direction (the direction corresponding to the axial direction of the gravure roll 1). One side of the intaglio printing plate 11 is provided with a graphic pattern 12 to be printed.

[0025] The graphic pattern 12 is composed of a plurality of cells 13, each of which is, for example, approximately square in shape. These cells 13 are arranged in a lattice pattern on one side of the printing intaglio plate 11. The graphic pattern 12 has central cells 13A located on the center side in the orthogonal direction and side edge cells 13B located on the side edges in the orthogonal direction. Each of the central cells 13A and side edge cells 13B has a rectangular opening 14 surrounded by a bank. During printing, the openings 14 are filled with the printing paste described above.

[0026] As shown in Figure 3, the center cell 13A is partitioned by a pair of printing direction banks 15, 15 extending in the printing direction and a pair of orthogonal direction banks 16, 16 extending in the orthogonal direction. In the center cell 13A, each printing direction bank 15 has a first cutout 21, 21 that connects adjacent cells 13, 13 in the orthogonal direction. The first cutouts 21, 21 are formed in positions corresponding to the corners of the cells 13. In the cells 13, 13 adjacent in the printing direction, first cutouts 21, 21 are formed corresponding to the same corner of the cells 13. In the cells 13, 13 adjacent in the orthogonal direction, first cutouts 21, 21 are formed corresponding to each of the diagonally opposite corners of the cells 13.

[0027] In the central cell 13A, as shown in Fig. 3, second cutouts 22, 22 that connect adjacent cells 13, 13 in the printing direction are provided on each of the orthogonal banks 16. The second cutouts 22, 22 are formed at positions corresponding to the corners of the cells 13. In the cells 13, 13 adjacent in the orthogonal direction, the second cutouts 22, 22 are formed corresponding to the same corners of the cells 13. In the cells 13, 13 adjacent in the printing direction, the second cutouts 22, 22 are formed corresponding to the corners on the diagonal of the cells 13.

[0028] The first cutouts 21 form a wavy printing paste flow path P1 in the printing intaglio 11, extending between the cells 13 in the perpendicular direction so as to connect adjacent first cutouts 21. The phases of adjacent printing paste flow paths P1 in the printing direction are substantially the same. The second cutouts 22 form a wavy printing paste flow path P2 in the printing intaglio 11, extending between the cells 13 in the printing direction so as to connect adjacent second cutouts 22. The phases of adjacent printing paste flow paths P2 in the perpendicular direction are substantially the same.

[0029] In this embodiment, the width K2 of the second cutout 22 in the orthogonal direction is greater than the width K1 of the first cutout 21 in the printing direction. This makes the fluidity of the printing paste in the print paste flow path P2 extending in the printing direction greater than the fluidity of the printing paste in the print paste flow path P1 extending in the orthogonal direction. There are no particular limitations on the ratio of the width K1 of the first cutout 21 in the printing direction to the width K2 of the second cutout 22 in the orthogonal direction, but it is, for example, 1:1.5 to 1:8.

[0030] As shown in Figure 4, each side end cell 13B is defined by a single printing direction bank 15 extending in the printing direction and a pair of orthogonal direction banks 16, 16 extending in the orthogonal direction. The printing direction bank 15 is a common bank with the printing direction bank 15 that defines the adjacent central cell 13A in the orthogonal direction, and is located on the central cell 13A side of the side end cell 13B. No printing direction bank 15 is located on the side end side of the side end cell 13B, leaving the outer end side open.

[0031] Next, the configuration of the center cells 13A and the side end cells 13B will be described in more detail.

[0032] For the central cell 13A, the W opening width W1, W bank width W2, L opening width L1, and L bank width L2 are defined as shown in Figure 3. The W opening width W1 is the distance between a pair of printing direction banks 15, 15 that make up the cell 13 (printing direction bank distance), and is the distance from the edge of one printing direction bank 15 on the opening 14 side to the edge of the other printing direction bank 15 on the opening 14 side. The W bank width W2 is the width of the printing direction bank 15 in the orthogonal direction (printing direction bank width).

[0033] The L opening width L1 is the distance (orthogonal bank distance) between a pair of orthogonal banks 16, 16 that make up the cell 13, and is the distance from the edge of one orthogonal bank 16 on the opening 14 side to the edge of the other orthogonal bank 16 on the opening 14 side. The L bank width L2 is the width of the orthogonal bank 16 in the printing direction (orthogonal bank width). In this embodiment, the L bank width L2 is equal to the W bank width W2.

[0034] In the central cell 13A, the W opening ratio and L opening ratio are defined as follows: The W opening ratio is the ratio of the printing direction bank distance to the sum of the printing direction bank distance and the printing direction bank width in the cell 13. The L opening ratio is the ratio of the orthogonal direction bank distance to the sum of the orthogonal direction bank distance and the orthogonal direction bank width in the cell 13. When the W opening ratio and L opening ratio are defined in this way, the printing intaglio 11 satisfies 70%≦W opening ratio≦90%. W opening rate (%) = 100 × (W opening width W1 / (W opening width W1 + W bank width W2)) L opening ratio (%) = 100 × (L opening width L1 / (L opening width L1 + L bank width L2))

[0035] In the central cell 13A, the pitch L / W ratio is defined as follows: The pitch L / W ratio is the ratio of the sum of the bank distance and bank width in the orthogonal direction to the sum of the bank distance and bank width in the printing direction in the cell 13. When the pitch L / W ratio is defined in this way, the printing intaglio plate 11 satisfies 0.65≦pitch L / W ratio≦1.3. Pitch L / W ratio = (L opening width L1 + L bank width L2) / (W opening width W1 + W bank width W2)

[0036] In the side end cells 13B, as shown in Figure 4, the width in the orthogonal direction of the printing direction banks 15 (printing direction bank width) is defined as W bank width W3, and the width in the printing direction of the orthogonal direction banks 16 (orthogonal direction bank width) is defined as L bank width L3. In this case, the W bank width W3 > W bank width W2 is satisfied in the printing intaglio plate 11. In this embodiment, the printing direction banks 15 of the side end cells 13B are wider on the opening 14 side of the side end cells 13B.

[0037] For this reason, the protruding length F2 of the orthogonal direction banks 16 that protrude in the orthogonal direction from the printing direction banks 15 in the side end cells 13B is shorter than the protruding length F1 (see FIG. 3) of the orthogonal direction banks 16 that protrude in the orthogonal direction from the printing direction banks 15 in the center cells 13A. Because the protruding length F2 is shorter than the protruding length F1, the opening area S2 of the side end cells 13B is smaller than the opening area S1 of the center cells 13A.

[0038] In addition, in the side-end cell 13B, the L-bank width L3 satisfies L-bank width L3 < W-bank width W3. That is, the orthogonal-direction bank width of the side-end cell 13B is smaller than the print-direction bank width of the side-end cell 13B. In the present embodiment, the L-bank width L3 is equal to the L-bank width L2. As described above, the L-bank width L2 is equal to the W-bank width W2. Therefore, in the present embodiment, W-bank width W3 > L-bank width L3 = L-bank width L2 = W-bank width W2.

[0039] In the intaglio plate 11 for printing having the above configuration, by changing the W-opening ratio, the thickness of the printed pattern can be adjusted without changing the physical properties of the printing paste. By setting the W-opening ratio to 70% or more, the area of the print-direction bank 15 with respect to the cell 13 does not become excessive, and the non-transfer portion due to the print-direction bank 15 is sufficiently filled by the sufficient flow of the printing paste. By setting the W-opening ratio to 90% or less, the fluidity of the printing paste in the orthogonal direction is maintained, and the non-transfer portion due to the orthogonal portion between the print-direction bank 15 and the orthogonal-direction bank 16 is sufficiently filled.

[0040] In addition, in the intaglio plate 11 for printing, by setting the pitch L / W ratio to 0.65 or more, the orthogonal-direction bank-to-bank distance is sufficiently maintained, and the fluidity of the printing paste until the non-transfer portion is filled can be maintained. By setting the pitch L / W ratio to 1.3 or less, the fluidity of the printing paste in the print direction can be ensured, and the non-transfer portion due to the orthogonal portion between the print-direction bank and the orthogonal-direction bank can be quickly filled. As described above, in the intaglio plate 11 for printing, the surface roughness of the formed printed pattern can be suppressed.

[0041] In the intaglio plate 11 for printing, the first notch portions 21, 21 adjacent to each other in the print direction have substantially the same position in the print direction with respect to the cell 13, while the first notch portions 21, 21 adjacent to each other in the orthogonal direction have different positions in the print direction with respect to the cell 13. In addition, in the intaglio plate 11 for printing, the second notch portions 22, 22 adjacent to each other in the print direction have different positions in the orthogonal direction with respect to the cell 13, while the second notch portions 22, 22 adjacent to each other in the orthogonal direction have substantially the same position in the orthogonal direction with respect to the cell 13.

[0042] With this configuration, a printing paste flow path P1 in the orthogonal direction between the cells 13 is formed in a wavy shape to connect adjacent first cutouts 21, and a printing paste flow path P2 in the printing direction between the cells 13 is formed in a wavy shape to connect adjacent second cutouts 22. Furthermore, the phases of adjacent printing paste flow paths P1 in the orthogonal direction are substantially the same, and the phases of adjacent printing paste flow paths P2 in the printing direction are substantially the same. This uniformizes the flow of printing paste within the cells 13, reducing variations in the thickness of the printing paste filled into the cells 13. This further reduces the surface roughness of the resulting print pattern.

[0043] The intaglio printing plate 11 has a plurality of cells 13, each of which has a central cell 13A located at the center in the orthogonal direction and a side edge cell 13B located at a side edge in the orthogonal direction. The bank width in the printing direction of the side edge cell 13B is larger than the bank width in the printing direction of the central cell 13A, and the opening area S2 of the side edge cell 13B is smaller than the opening area S1 of the central cell 13A.

[0044] In this way, by making the bank width of the side edge cells 13B in the printing direction larger than that of the central cells 13A and making the opening area of ​​the side edge cells 13B smaller than that of the central cells 13A, it is possible to prevent stringiness of the printing paste in the side edge cells during transfer. This prevents the so-called saddle phenomenon (described later), in which the thickness of the printing pattern at the side edges is greater than that at the center.

[0045] In the printing intaglio plate 11, the bank width of the side edge cells 13B in the orthogonal direction is smaller than the bank width of the side edge cells 13B in the printing direction. By reducing the bank width of the side edge cells 13B in the orthogonal direction, it is possible to suppress differences in the amount of paste applied in the printing direction by the side edge cells 13B. As a result, it is possible to suppress variations in the thickness of the printed pattern at the side edges. It is also possible to improve the straightness of the printed pattern at the side edges.

[0046] Furthermore, in the method for manufacturing a multilayer electronic component of this embodiment, the thickness of the internal electrode layer or step absorption layer to be formed can be adjusted without changing the physical properties of the printing paste by using the printing intaglio plate 11. Furthermore, the surface roughness of the internal electrode layer or step absorption layer to be formed can be suppressed.

[0047] Examples of the present disclosure are described below. In these examples, first, as shown in FIG. 5, an evaluation test was conducted to examine the relationship between the W aperture ratio and pitch L / W ratio and the thickness and surface roughness of the printed pattern. In this evaluation test, multiple printing intaglio samples with different W aperture ratios and pitch L / W ratios were prepared. The printing paste used was an electrode paste used to form internal electrode layers of multilayer electronic components, and the thickness and surface roughness of the printed pattern were measured when the electrode paste was transferred to a ceramic green sheet. The surface roughness of the printed pattern was measured using macro Ra (arithmetic average roughness in a certain two-dimensional area).

[0048] Each of Examples 1 to 8 satisfied the conditions of 70%≦W opening ratio≦90% and 0.65≦pitch L / W ratio≦1.3. In Examples 1 to 4, the L opening width (bank distance in the orthogonal direction) and L bank width (bank width in the orthogonal direction) were kept constant, and the W opening width (bank distance in the printing direction) and W bank width (bank width in the printing direction) were adjusted to change the W opening ratio and pitch L / W ratio within the above range. In Examples 5 to 8, the W opening width (bank distance in the printing direction), W bank width (bank width in the printing direction), and L bank width (bank width in the orthogonal direction) were kept constant, and only the pitch L / W ratio was changed within the above range by adjusting the L opening width (bank distance in the orthogonal direction). Specific numerical values ​​of each parameter in Examples 1 to 8 are shown in FIG. 5.

[0049] Comparative Example 1 satisfies 0.65≦pitch L / W ratio≦1.3, but has a W aperture ratio <70%. Comparative Example 2 satisfies 0.65≦pitch L / W ratio≦1.3, but has a W aperture ratio >90%. Comparative Example 3 satisfies 70%≦W aperture ratio ≦90%, but has a pitch L / W ratio <0.65. Comparative Example 4 satisfies 70%≦W aperture ratio ≦90%, but has a pitch L / W ratio >1.3. Specific numerical values ​​of each parameter in Comparative Examples 1 to 4 are as shown in FIG. 5.

[0050] 5, in Examples 1 to 8, which satisfied the conditions of 70%≦W aperture ratio≦90% and 0.65≦pitch L / W ratio≦1.3, the macro Ra, which indicates the surface roughness of the printed pattern, was less than 10 nm. On the other hand, in Comparative Examples 1 to 4, which did not satisfy either the conditions of 70%≦W aperture ratio≦90% or 0.65≦pitch L / W ratio≦1.3, the macro Ra, which indicates the surface roughness of the printed pattern, was 15 nm to 50 nm. From these results, it was confirmed that the surface roughness of the printed pattern can be suppressed by satisfying the conditions of 70%≦W aperture ratio≦90% and 0.65≦pitch L / W ratio≦1.3.

[0051] Figure 6 is a graph showing the relationship between W aperture ratio and printed pattern thickness. In Figure 6, the horizontal axis represents W aperture ratio [%] and the vertical axis represents printed pattern thickness [μm], and the W aperture ratio and printed pattern thickness for Examples 1 to 8 and Comparative Examples 1 to 4 shown in Figure 5 are plotted. The results in Figure 6 show that, within the W aperture ratio range of 65% to 95%, the printed pattern thickness increases linearly in the range of 0.3 μm to 0.6 μm as the W aperture ratio increases. These results confirm that the thickness of the printed pattern can be adjusted by changing the W aperture ratio without changing the physical properties of the printing paste.

[0052] Fig. 7 is a graph showing the relationship between the L opening ratio and the thickness of the printed pattern. In Fig. 7, the horizontal axis represents the L opening ratio [%] and the vertical axis represents the thickness [μm] of the printed pattern, and the L opening ratio and the thickness of the printed pattern for Examples 1 to 8 and Comparative Examples 1 to 4 shown in Fig. 5 are plotted. The results in Fig. 7 show that, when the L opening ratio is in the range of 70% to 95%, the thickness of the printed pattern remains almost constant in the range of 0.5 μm to 0.6 μm, even when the L opening ratio increases. This confirms that changing the L opening ratio does not contribute to the thickness of the printed pattern.

[0053] Fig. 8 is a graph showing the relationship between W aperture ratio and surface roughness of the printed pattern. In Fig. 8, the horizontal axis shows W aperture ratio [%] and the vertical axis shows the macro Ra [nm] of the printed pattern, and the W aperture ratio and macro Ra of the printed pattern are plotted for Examples 1 to 8 and Comparative Examples 1 to 4 shown in Fig. 5. The results in Fig. 8 show that when the W aperture ratio is in the range of 70% to 90%, the macro Ra of the printed pattern is kept to 10 nm or less. On the other hand, when the W aperture ratio is less than 70% or more than 90%, the macro Ra of the printed pattern is 30 nm to 50 nm.

[0054] Fig. 9 is a graph showing the relationship between the pitch L / W ratio and the surface roughness of the printed pattern. In Fig. 9, the horizontal axis represents the pitch L / W ratio and the vertical axis represents the macro Ra [nm] of the printed pattern, and the pitch L / W ratio and macro Ra of the printed pattern are plotted for Examples 1 to 8 and Comparative Examples 1 to 4 shown in Fig. 5. The results in Fig. 9 show that when the pitch L / W ratio is in the range of 0.65 to 1.3, the macro Ra of the printed pattern is kept below 10 nm. On the other hand, when the pitch L / W ratio is less than 0.5 or more than 1.3, the macro Ra of the printed pattern is 15 nm to 30 nm.

[0055] Combining the results of Figures 6, 8, and 9, it can be concluded that in a printing intaglio plate, by satisfying the conditions of 70%≦W aperture ratio≦90% and 0.65≦pitch L / W ratio≦1.3, the thickness of the printed pattern can be adjusted without changing the physical properties of the printing paste, and the surface roughness of the printed pattern can be reduced.

[0056] In this example, we next conducted an evaluation test to examine the relationship between the W bank width and L bank width of the side edge cells and the saddle height. As described above, the saddle phenomenon is caused by stringiness of the printing paste in the side edge cells during transfer, and is a phenomenon in which the thickness of the printed pattern at the side edges is greater than the thickness of the printed pattern at the center, as shown in Figure 10. Here, as shown in Figure 10, the difference in height between the height H1 of the printed pattern at the center and the peak height H2 of the thickness of the printed pattern at the side edges was used as the saddle height for evaluation.

[0057] Figure 11 is a graph showing the relationship between the W bank width and L bank width of the side edge cells and the saddle height. Here, sample A, in which the W bank width and L bank width of the side edge cells are equal to the W bank width and L bank width of the central cell, is used as the reference. In sample B, the W bank width and L bank width of the side edge cells are each 3 μm wider than the W bank width and L bank width of the central cell. In sample C, the W bank width and L bank width of the side edge cells are each 6 μm wider than the W bank width and L bank width of the central cell.

[0058] As shown in Figure 11, compared to the reference sample A, sample B, in which the W bank width and L bank width of the side end cells were wider, had a saddle height reduced by approximately 0.015 μm. Sample C, in which the W bank width and L bank width of the side end cells were wider still further, had a saddle height reduced by approximately 0.055 μm. These results confirmed that the wider the W bank width and L bank width of the side end cells were made relative to the W bank width and L bank width of the central cell, the greater the effect of reducing saddle height.

[0059] FIG. 12 shows the results of an evaluation test on the saddle height and side edge straightness of the printed pattern. Side edge straightness, as shown in FIG. 13, is an index showing the degree of unevenness of the side edges of the printed pattern after transfer. Here, the difference D between the maximum and minimum protrusion positions in the orthogonal direction at the side edge was used to evaluate side edge straightness. A larger difference D indicates lower side edge straightness, and a smaller difference D indicates higher side edge straightness. Here, the surface opening ratio is used as a parameter equivalent to the opening area. The surface opening ratio is the ratio of the opening area to the total area of ​​the cell, including the banks in the printing direction and the banks in the orthogonal direction. The surface opening ratio is equal to the product of the W opening ratio and the L opening ratio.

[0060] In all of Examples 9 to 11, the bank width in the printing direction of the side edge cells is larger than the bank width in the printing direction of the central cells. In Example 11, the bank width in the orthogonal direction of the side edge cells is equal to the bank width in the printing direction of the side edge cells, but in Examples 9 and 10, the bank width in the orthogonal direction of the side edge cells is smaller than the bank width in the printing direction of the side edge cells. Also, in all of Examples 9 to 11, the opening area of ​​the side edge cells is smaller than the opening area of ​​the central cells. Meanwhile, in Comparative Example 5, the bank width in the printing direction of the side edge cells is equal to the bank width in the printing direction of the central cells. Also, in Comparative Example 5, the bank width in the orthogonal direction of the side edge cells is equal to the bank width in the printing direction of the side edge cells. In Comparative Example 5, the opening area of ​​the side edge cells is equal to the opening area of ​​the central cells.

[0061] As shown in FIG. 12, in Comparative Example 5, the saddle height was 80 nm and the side edge straightness was 12 μm. In contrast, in Examples 9 to 11, the saddle height was reduced to 30 nm or less. This confirmed that making the bank width of the side edge cells in the printing direction larger than the bank width of the central cells and making the opening area of ​​the side edge cells smaller than the opening area of ​​the central cells contributes to the occurrence of the saddle phenomenon. Furthermore, in Examples 9 and 10, the side edge straightness was reduced to 7 to 8 μm. Therefore, it was also confirmed that making the bank width of the side edge cells in the orthogonal direction smaller than the bank width of the side edge cells in the printing direction contributes to improving the side edge straightness. [Explanation of symbols]

[0062] 11...printing intaglio plate, 13...cell, 13A...central cell, 13B...side end cell, 15...printing direction bank, 16...orthogonal direction bank, 21...first cutout, 22...second cutout, W1...W opening width (distance between banks in the printing direction), W2, W3...W bank width (bank width in the printing direction), L1...L opening width (distance between banks in the orthogonal direction), L2, L3...L bank width (bank width in the orthogonal direction), S1...opening area of ​​central cell, S2...opening area of ​​side end cell.

Claims

1. The ink jet recording medium comprises a plurality of cells partitioned by printing direction banks extending in the printing direction and orthogonal direction banks perpendicular to the printing direction, a first cutout portion that connects adjacent cells in the orthogonal direction is provided in the printing direction bank; a second cutout portion that connects adjacent cells in the printing direction is provided in the orthogonal bank; The ratio of the bank distance in the printing direction to the sum of the bank distance in the printing direction and the bank width in the printing direction in the cell is defined as a W opening ratio, When the ratio of the sum of the bank distance in the perpendicular direction and the bank width in the perpendicular direction to the sum of the bank distance in the printing direction and the bank width in the printing direction in the cell is defined as the pitch L / W ratio, A printing intaglio plate that satisfies 70%≦W opening ratio≦90% and 0.65≦pitch L / W ratio≦1.

3.

2. the first cutout portions adjacent to each other in the printing direction are positioned substantially the same relative to the cell in the printing direction, while the first cutout portions adjacent to each other in the perpendicular direction are positioned differently relative to the cell in the printing direction, 2. The printing intaglio plate according to claim 1, wherein the second cutout portions adjacent to each other in the printing direction are positioned differently in the orthogonal direction relative to the cells, while the second cutout portions adjacent to each other in the orthogonal direction are positioned approximately the same in the orthogonal direction relative to the cells.

3. The plurality of cells include central cells located on a central side in the orthogonal direction and side end cells located on side ends in the orthogonal direction, the bank width in the printing direction of the side end cells is larger than the bank width in the printing direction of the central cells, 3. The intaglio printing plate according to claim 1, wherein the opening area of ​​the side end cells is smaller than the opening area of ​​the central cells.

4. 4. The intaglio printing plate according to claim 3, wherein the bank width of the side end cells in the orthogonal direction is smaller than the bank width of the side end cells in the printing direction.

5. A method for producing a multilayer electronic component, comprising the step of forming an internal electrode layer or a step absorption layer using the printing intaglio plate according to any one of claims 1 to 4.

Citation Information

Patent Citations

  • JP1964-016402B

  • Device for manufacturing electronic parts

    JP1997076459A

  • Gravure printing plate and method for manufacturing laminated electronic part

    JP2003297667A

  • Plate for gravure printing, and manufacturing method for laminated ceramic electronic component

    JP2006015616A

  • Gravure printing machine and method for manufacturing laminated ceramic electronic component

    JP2006110923A