Porous liquid crystal polymer sheet and wiring circuit board

A porous liquid crystal polymer sheet with defined porosity, thickness, and repulsive force addresses the need for low resilience and handleability in antenna substrates, enhancing their performance in smaller devices.

JP7733466B2Active Publication Date: 2025-09-03NITTO DENKO CORP
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Patent Information

Application Number
JP2021060769
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-31
Publication Date
2025-09-03
Estimated Expiration
2041-03-31

AI Technical Summary

Technical Problem

Antenna substrates require low resilience and ease of handling to accommodate smaller device sizes, yet existing substrates lack these properties.

Method used

A porous liquid crystal polymer sheet with specific porosity, thickness, and repulsive force ranges, along with a melting point of 200°C or higher, is developed to maintain shape and handleability.

Benefits of technology

The porous liquid crystal polymer sheet exhibits excellent low resilience and handling properties while maintaining its shape, suitable for use in wiring circuit boards and antenna substrates.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a porous liquid crystal polymer sheet and a wiring circuit board, excellent in handleability while excellent in low resilience properties.SOLUTION: A porous liquid crystal polymer sheet 1 has a porosity P of 20% or more to 90% or less. The porous liquid crystal polymer sheet 1 has thickness T of 1 μm or more to 240 μm or less.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a porous liquid crystal polymer sheet and a wiring circuit board. [Background technology]

[0002] An antenna substrate including a foamed liquid crystal polymer is known (see, for example, Patent Document 1 below). In Patent Document 1, the antenna substrate is incorporated into the housing of the antenna device in a folded state. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] WO2011 / 152538 No. Summary of the Invention [Problem to be solved by the invention]

[0004] In order to reduce the size of devices, the internal space of the housing is becoming smaller, and therefore the antenna substrate is required to have excellent low resilience.

[0005] However, the antenna substrate disclosed in Patent Document 1 has the drawback of not having the excellent low resilience described above.

[0006] On the other hand, the antenna substrate is also required to maintain its shape and be easy to handle.

[0007] The present invention provides a porous liquid crystal polymer sheet and a wiring circuit board that are easy to handle and have low resilience. [Means for solving the problem]

[0008] The present invention (1) includes a porous liquid crystal polymer sheet having a porosity P of 20% or more and 90% or less and a thickness T of 1 μm or more and 240 μm or less.

[0009] The present invention (2) includes the porous liquid crystal polymer sheet according to (1), which has a melting point of 200° C. or higher.

[0010] The present invention (3) includes the porous liquid crystal polymer sheet according to (1) or (2), which has a repulsive force R of 50 [mN / mm] or less in the low repulsion test described below.

[0011] <Low resilience test> The porous liquid crystal polymer sheet is cut into a shape of 30 mm in length and 10 mm in width to prepare a sample. The sample is folded so that both longitudinal ends of the sample approach each other, one side of each end faces the other in the thickness direction, and the distance between the other sides of each end faces the other in the thickness direction is 3 mm. The repulsive force in the opposing direction of the folded porous liquid crystal polymer sheet is measured.

[0012] The present invention (4) includes the porous liquid crystal polymer sheet according to (3), in which the repulsive force R [mN / mm], the thickness T [μm], and the porosity P [%] satisfy the following formula [1]: R / (T / P)≦12.5 [1]

[0013] The present invention (5) includes the porous liquid crystal polymer sheet according to any one of (1) to (4), which has a dielectric constant of 2.50 or less at 10 GHz.

[0014] The present invention (6) includes a wiring circuit board comprising the porous liquid crystal polymer sheet according to any one of (1) to (5) as an insulating layer. [Effects of the Invention]

[0015] The porous liquid crystal polymer sheet and the wiring circuit board of the present invention are excellent in low resilience while being able to maintain the sheet shape. [Brief explanation of the drawings]

[0016] [Figure 1] FIG. 1 is a schematic diagram of a low resilience test for a porous liquid crystal polymer sheet. [Figure 2] FIG. 2 is a schematic diagram of the second low resilience test. [Figure 3] 3A and 3B are process diagrams illustrating an extraction method, which is an example of a method for producing an embodiment of a porous liquid crystal polymer sheet of the present invention. Fig. 3A shows the first step, and Fig. 3B shows the second step. [Figure 4] 4A to 4D are process diagrams illustrating a foaming method, which is an example of a manufacturing method for an embodiment of a porous liquid crystal polymer sheet of the present invention. Fig. 4A is the fourth step, Fig. 4B is the fifth step, Fig. 4C is the sixth step, and Fig. 4D is the seventh step. [Figure 5] FIG. 5 is a cross-sectional view of one embodiment of the wired circuit board of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0017] The porous liquid crystal polymer sheet of the present invention has, for example, a thickness and a sheet shape. The sheet shape includes a film shape. The porous liquid crystal polymer sheet extends in a plane direction. The plane direction is perpendicular to the thickness direction.

[0018] The porous liquid crystal polymer sheet has a large number of fine pores (air pores). The air bubble structure of the porous liquid crystal polymer sheet may be, for example, a closed-cell structure, an open-cell structure, or a semi-closed / semi-open-cell structure. The closed-cell structure is preferred.

[0019] <Porosity P of porous liquid crystal polymer sheet> The porosity P of the porous liquid crystal polymer sheet is 20% or more and 90% or less.

[0020] If the porosity P of the porous liquid crystal polymer sheet is less than 20%, the low resilience of the porous liquid crystal polymer sheet will decrease even if the thickness T of the porous liquid crystal polymer sheet is within the range described below.

[0021] If the porosity P of the porous liquid crystal polymer sheet exceeds 90%, even if the thickness T of the porous liquid crystal polymer sheet is within the range described below, the porous liquid crystal polymer sheet will not be able to maintain its sheet shape, and handling will be impaired.

[0022] The porosity P of the porous liquid crystal polymer sheet is preferably 27.5% or more, more preferably 30% or more, even more preferably 45% or more, and particularly preferably 56% or more. The porosity P of the porous liquid crystal polymer sheet is preferably 75% or less, more preferably 65% ​​or less, even more preferably 55% or less, and particularly preferably 50% or less.

[0023] The porosity P of the porous liquid crystal polymer sheet can be determined using an electronic hydrometer. Alternatively, the porosity P of the porous liquid crystal polymer sheet can be determined using a nonporous liquid crystal polymer film corresponding to the porous liquid crystal polymer sheet. Specifically, the specific gravity G1 of the porous liquid crystal polymer sheet and the specific gravity G0 of the nonporous liquid crystal polymer sheet are measured, and the porosity P of the porous liquid crystal polymer sheet is determined using the following formula:

[0024] P = 100 × (1 − G1 / G0) P: Porosity of the porous liquid crystal polymer sheet G1: Specific gravity of porous liquid crystal polymer sheet G0: Specific gravity of non-porous liquid crystal polymer sheet

[0025] The size of the pores in the porous liquid crystal polymer sheet is not limited. The pores may or may not have an aspect ratio. When the pores have an aspect ratio, the shortest length is, for example, 0.01 μm or more, preferably 0.1 μm or more, and, for example, 2 μm or less, preferably 1 μm or less. The shortest length is, for example, 0.1 μm or more, preferably 1 μm or more, and, for example, 50 μm or less, preferably 25 μm or less. When the pores do not have an aspect ratio, the pores have a spherical shape. The above-mentioned size of the pores is measured by image analysis of cross-sectional SEM photographs.

[0026] <Thickness T of porous liquid crystal polymer sheet> The thickness T of the porous liquid crystal polymer sheet is 1 μm or more and 240 μm or less.

[0027] If the thickness T of the porous liquid crystal polymer sheet is less than 1 μm, even if the porosity P of the porous liquid crystal polymer sheet is within the above range, the porous liquid crystal polymer sheet cannot maintain its sheet shape and is difficult to handle.

[0028] If the thickness T of the porous liquid crystal polymer sheet exceeds 240 μm, the porous liquid crystal polymer sheet will have reduced low resilience even if the porosity P of the porous liquid crystal polymer sheet is within the above range.

[0029] The thickness T of the porous liquid crystal polymer sheet is preferably 10 μm or more, more preferably 50 μm or more, even more preferably 100 μm or more, and is preferably 225 μm or less, more preferably less than 200 μm, even more preferably 185 μm or less, and particularly preferably 175 μm or less.

[0030] The thickness of the porous liquid crystal polymer sheet is measured, for example, by a contact type film thickness meter.

[0031] <Other properties of porous liquid crystal polymer sheets>

[0032] <Repulsion force> The repulsive force of the porous liquid crystal polymer sheet in the low repulsion test described below is, for example, 100 mN / mm or less, preferably 50 mN / mm or less, more preferably 35 mN / mm or less, even more preferably 20 mN / mm or less, particularly preferably 15 mN / mm or less, and further preferably 10 mN / mm or less. If the repulsive force is not more than the above upper limit, the porous liquid crystal polymer sheet has excellent repulsive force.

[0033] The lower limit of the repulsive force of the porous liquid crystal polymer sheet in the low repulsive property test is not limited, and the lower limit of the repulsive force of the porous liquid crystal polymer sheet in the low repulsive property test is, for example, 0.1 mN / mm, or even 1 mN / mm.

[0034] <Low resilience test> A porous liquid crystal polymer sheet is cut to a length of 30 mm and a width of 10 mm to prepare a sample 10. As shown in FIG. 1, the sample 10 is folded so that both longitudinal ends 11 of the sample 10 approach each other, one thickness-wise surface 12 of each end 11 faces each other, and the distance between the other thickness-wise surfaces 13 of each end 11 is 3 mm. When the sample 10 is folded, two plates 14 are brought into contact with both ends of the other thickness-wise surface 13, respectively. The two plates are parallel. The repulsive force of the folded sample 10 in the opposing direction is measured.

[0035] Furthermore, the repulsive force R [mN / mm] of the porous liquid crystal polymer sheet, the thickness T [μm] of the porous liquid crystal polymer sheet, and the porosity P [%] of the porous liquid crystal polymer sheet, for example, satisfy the following formula [1], preferably satisfy the following formula [2], and more preferably satisfy the following formula [3].

[0036] R / (T / P)≦12.5 [1] R / (T / P)≦10.0 [2] R / (T / P)≦7.5 [3]

[0037] R: Repulsive force of the porous liquid crystal polymer sheet [mN / mm] T: Thickness of the porous liquid crystal polymer sheet [μm] P: Porosity of the porous liquid crystal polymer sheet [%]

[0038] If the above formula is satisfied, the porous liquid crystal polymer sheet can maintain its shape, has excellent handling properties, and also has excellent low resilience.

[0039] Regarding formula [1], a line segment L1 where R / (T / P) = 12.5 is drawn as a solid line. When formula [1] is satisfied, R and T / P are plotted on the line segment L1 and in the area below it.

[0040] Regarding formula [2], the line segment L2 where R / (T / P) = 10.0 is drawn with a dashed line. When formula [2] is satisfied, R and T / P are plotted on the line segment L2 and in the area below it.

[0041] Regarding formula [3], the line segment L3 where R / (T / P) = 7.5 is drawn with a two-dot dashed line. When formula [3] is satisfied, R and T / P are plotted on the line segment L3 and in the area below it.

[0042] <Second low resilience test> Furthermore, the porous liquid crystal polymer sheet does not develop creases, for example, in the second low resilience test described below.

[0043] In the second low resilience test, a porous liquid crystal polymer sheet is first cut to a length of 30 mm and a width of 10 mm to prepare a sample 10. Next, as shown in FIG. 2, a central portion 16 of the sample 10 is wrapped around a rod 15 with a radius of 6 mm. At this time, the presence or absence of a fold in the central portion 16 is visually observed. Note that in this second low resilience test, the two plates 14 (FIG. 1) used in the above low resilience test are not used.

[0044] <Dielectric constant> The dielectric constant of the porous liquid crystal polymer sheet at 10 GHz is, for example, 2.50 or less, preferably 2.40 or less, more preferably 2.30 or less, even more preferably 2.10 or less, and even more preferably 1.90 or less, less than 1.90, or 1.75 or less. If the dielectric constant of the porous liquid crystal polymer sheet is below the upper limit described above, the porous liquid crystal polymer sheet has low dielectric constant. The lower limit of the dielectric constant of the porous liquid crystal polymer sheet at 10 GHz is not limited. For example, the dielectric constant of the porous liquid crystal polymer sheet at 10 GHz is greater than 1.00. The method for measuring the dielectric constant of the porous liquid crystal polymer sheet will be described in the Examples below.

[0045] <Melting point> The melting point of the porous liquid crystal polymer sheet is not limited. The melting point of the porous liquid crystal polymer sheet is, for example, 200°C or higher, preferably 220°C or higher, more preferably 400°C or higher, and for example, 370°C or lower. The melting point of the porous liquid crystal polymer sheet is measured by differential scanning calorimetry (DSC) or thermogravimetric differential thermal analysis (TG-DTA). Furthermore, if the melting point of the liquid crystal polymer described below is known, the melting point of that liquid crystal polymer can also be used as the melting point of the porous liquid crystal polymer sheet. If the melting point of the porous liquid crystal polymer sheet is above the above-mentioned lower limit, it will have excellent handleability and processability. If the melting point of the porous liquid crystal polymer sheet is below the above-mentioned upper limit, it will have excellent heat resistance.

[0046] <Liquid Crystal Polymer> The liquid crystal polymer that is the material for the porous liquid crystal polymer is not limited. The liquid crystal polymer is a liquid crystalline thermoplastic resin. Examples of the liquid crystal polymer include liquid crystal polyester, preferably aromatic liquid crystal polyester. Liquid crystal polymers are specifically described in, for example, JP 2020-147670 A and JP 2004-189867 A. Commercially available liquid crystal polymers can be used. Examples of commercially available products include the UENO LCP (registered trademark, the same applies hereinafter) 8100 series (low melting point type, manufactured by Ueno Pharmaceutical Co., Ltd.) and the UENO LCP 5000 series (high melting point type, manufactured by Ueno Pharmaceutical Co., Ltd.). Preferably, the UENO LCP 8100 series is used.

[0047] In particular, examples of porous liquid crystal polymer materials include liquid crystal polymers having a coefficient of thermal expansion (CTE) of 1 ppm / K or more, preferably 10 ppm / K or more, and for example, 40 ppm / K or less, preferably 25 ppm / K or less. If the material is a liquid crystal polymer having a coefficient of thermal expansion equal to or greater than the above-mentioned lower limit, the porous liquid crystal polymer sheet has excellent handleability and processability. If the material is a liquid crystal polymer having a CTE equal to or less than the above-mentioned upper limit, the porous liquid crystal polymer sheet has excellent circuit processability.

[0048] In particular, examples of porous liquid crystal polymer materials include liquid crystal polymers having a dielectric constant of 4.0 or less, preferably 3.5 or less, and 3.0 or more. If the material is a liquid crystal polymer having a dielectric constant below the above upper limit, the porous liquid crystal polymer sheet has low dielectric constant.

[0049] <Method of manufacturing porous liquid crystal polymer sheet> The manufacturing method of the porous liquid crystal polymer sheet is not limited. Examples of the manufacturing method of the porous liquid crystal polymer sheet include an extraction method and a foaming method. The manufacturing methods described above can be carried out alone or in combination.

[0050] <Extraction method> The extraction method includes, for example, steps 1, 2, and 3. In the extraction method, steps 1 to 3 are carried out in order.

[0051] <1st process> In the first step, a liquid crystal polymer and a porosifying agent are kneaded to prepare a composition.

[0052] The porosifying agent is not limited. For example, a compound that undergoes phase separation with the liquid crystal polymer at the kneading temperature (described later) can be used. Phase separation includes not dissolving in the liquid crystal polymer and maintaining a constant shape in the kneaded product. Preferably, the porosifying agent is a compound that does not thermally decompose at the kneading temperature. Specifically, a compound that has a mass loss rate of 10% by mass or less at 230°C can be used. For example, a purine derivative can be used, and preferably caffeine can be used.

[0053] The blending ratio of the porosifying agent is appropriately adjusted so as to obtain the above-mentioned porosity P. Specifically, the mass ratio of the porosifying agent to 100 parts by mass of the liquid crystal polymer is, for example, 10 parts by mass or more, preferably 50 parts by mass or more, and, for example, 500 parts by mass or less, preferably 250 parts by mass or less. The volume percentage of the porosifying agent to the total volume of the liquid crystal polymer and the porosifying agent is, for example, 20% by volume or more, preferably 30% by volume or more, and, for example, 90% by volume or less, preferably 250% by volume or less, more preferably 150% by volume or less. The volume percentage of the porosifying agent to the total volume of the liquid crystal polymer and the porosifying agent is determined by conversion using specific gravity from the percentage of the mass of the porosifying agent to the total mass of the liquid crystal polymer and the porosifying agent.

[0054] The composition may further contain, for example, an additive in an appropriate proportion. Examples of the additive include a filler. Examples of the filler include hollow spheres. Examples of hollow spheres include glass balloons. Examples of hollow spheres include those described in JP 2004-189867 A. Preferably, the composition does not contain any additive. If the composition does not contain any additive, the porous liquid crystal polymer sheet can be prevented from becoming brittle.

[0055] The kneading temperature is not limited and is, for example, 200°C or higher, preferably 210°C or higher, and for example, 400°C or lower, preferably 300°C or lower, more preferably 230°C or lower.

[0056] Next, in the first step, as shown in FIG. 3A, the composition is formed into a sheet to produce a nonporous sheet 21. Methods for forming the composition into a sheet include, for example, pressing, extrusion, and injection. Pressing is preferred, and heat pressing is more preferred. The heat pressing temperature is, for example, 200°C or higher and 400°C or lower. The pressing pressure is, for example, 1 MPa or higher, preferably 4 MPa or higher, and, for example, 20 MPa or lower, preferably 10 MPa or lower. This results in a nonporous sheet 21 containing a liquid crystal polymer and a porosifying agent.

[0057] There are no limitations on the thickness of the non-porous sheet 21. For example, the thickness of the non-porous sheet 21 is set to the target thickness of the porous liquid crystal polymer sheet 1.

[0058] <Second process> In the second step, the porosifying agent in the composition is extracted with a supercritical fluid. Specifically, the porosifying agent in the nonporous sheet 21 is extracted with a supercritical fluid. For example, as shown in FIG. 3B, the second step uses a supercritical apparatus 30. The supercritical apparatus 30 includes a pressure vessel 31 and a circulation device (not shown). The pressure vessel 31 contains a supercritical fluid 35 and allows the supercritical fluid 35 to flow therethrough. The circulation device circulates the supercritical fluid 35 through the pressure vessel 31. The circulation device is also provided with a recovery device. The recovery device removes the porosifying agent mixed in the supercritical fluid 35.

[0059] <Supercritical fluid 35> There is no limitation on the type of supercritical fluid 35. Examples of the supercritical fluid 35 include supercritical carbon dioxide and supercritical nitrogen. From the viewpoint of production costs, the supercritical fluid 35 is preferably supercritical carbon dioxide.

[0060] <Entrainer> An entrainer may be mixed with the supercritical fluid 35. The entrainer is mixed with the entrainer in order to increase the efficiency of extraction of the porosifying agent by the supercritical carbon dioxide. The mixing ratio of the entrainer is set appropriately.

[0061] In the second step, the non-porous sheet 21 is placed in a pressure vessel 31. Then, in the supercritical device 30, a supercritical fluid 35 is introduced into the pressure vessel 31. Then, the supercritical fluid 35 is circulated by a circulation device (not shown). As a result, the supercritical fluid 35 comes into contact with the non-porous sheet 21.

[0062] Then, first, the supercritical fluid 35 outside the nonporous sheet 21 is impregnated into the nonporous sheet 21. In other words, the supercritical fluid 35 penetrates into the interior of the nonporous sheet 21. Then, the above-mentioned supercritical fluid 35 returns to the outside of the nonporous sheet 21 while dissolving the porosifying agent. In this way, the porosifying agent in the nonporous sheet 21 is extracted by the supercritical fluid 35.

[0063] The conditions for the second step are not limited. The temperature of the supercritical fluid 35 is, for example, 110°C or higher and, for example, 190°C or lower. The pressure of the supercritical fluid 35 is, for example, 10 Ma or higher and, for example, 30 Ma or lower, preferably 27 MPa or lower. The extraction time is, for example, 20 minutes or longer and 60 minutes or shorter.

[0064] <3rd process> In the third step, the pressure in the pressure vessel 31 is reduced while the supercritical fluid 35 inside the pressure vessel 31 is removed. The rate at which the pressure is reduced is not limited. For example, the rate at which the pressure is reduced is adjusted so as to suppress foaming caused by the supercritical fluid 35 impregnated in the nonporous sheet 21. At this time, the pressure vessel 31 can be heated. The heating temperature is, for example, 150°C or higher and 300°C or lower. The heating time is, for example, 10 minutes or higher and 3 hours or lower.

[0065] As a result of the above, a plurality of pores 2 are formed in place of the porosity-forming agent that had been impregnated in the non-porous sheet 21. In this way, the porous liquid crystal polymer sheet 1 is manufactured.

[0066] <Foaming method> The foaming method includes, for example, a fourth step, a fifth step, a sixth step, and a seventh step. In the foaming method, the fourth step to the seventh step are carried out in this order.

[0067] <4th process> As shown in FIG. 4A, the fourth step is to form a nonporous sheet 21. Specifically, the liquid crystal polymer is formed into a sheet to form the nonporous sheet 21. The method and conditions for forming the liquid crystal polymer into a sheet are the same as the method (including kneading) and conditions for preparing the composition in the first step described above. However, the nonporous sheet 21 does not contain the porosifying agent described above. On the other hand, the nonporous sheet 21 made of the liquid crystal polymer described above can be used as is. Specifically, a commercially available nonporous sheet 21 can be used as is.

[0068] <5th process> In the fifth step, as shown in FIG. 4B , the nonporous sheet 21 is impregnated with the supercritical fluid 35. Specifically, the nonporous sheet 21 is brought into contact with the supercritical fluid 35. The method for bringing the nonporous sheet 21 into contact with the supercritical fluid 35 is the same as in the second step described above. In the fifth step, the nonporous sheet 21 is impregnated with the supercritical fluid 35. That is, the supercritical fluid 35 penetrates into the nonporous sheet 21.

[0069] <6th process> In the sixth step, as shown in FIG. 4C , the pressure of the atmosphere around the nonporous sheet impregnated with the supercritical fluid 35 is reduced. Specifically, the pressure in the pressure vessel 31 is reduced while the supercritical fluid 35 inside the pressure vessel 31 is removed. For example, the rate at which the pressure is reduced is adjusted so as to promote foaming by the supercritical fluid 35 impregnated in the nonporous sheet 21. In the sixth step, the nonporous sheet 21 is foamed to obtain a porous liquid crystal polymer sheet 1 containing a plurality of pores 2. This porous liquid crystal polymer sheet 1 is larger in the thickness direction and the plane direction than the nonporous sheet 21 before foaming. In other words, the nonporous sheet 21 expands to become the porous liquid crystal polymer sheet 1.

[0070] <7th process> In the seventh step, the porous liquid crystal polymer sheet 1 obtained in the sixth step is thinned. Methods for thinning the porous liquid crystal polymer sheet 1 include, for example, pressing, stretching, and rolling. Pressing is preferred from the viewpoint of precision in adjusting the thickness of the porous liquid crystal polymer sheet 1 obtained as a product.

[0071] Specifically, the porous liquid crystal polymer sheet 1 is pressed in the thickness direction. More specifically, the porous liquid crystal polymer sheet 1 is heat-pressed. In the heat press, for example, a press device equipped with two press plate members 40 is used. In the heat press, a spacer member 45 can be disposed between the two press plate members 40 and around the porous liquid crystal polymer sheet 1. In the heat press, the thickness T of the porous liquid crystal polymer sheet 1 to be produced is adjusted by adjusting the thickness of the spacer member 45. The conditions for the heat press are not limited.

[0072] <Applications of porous liquid crystal polymer sheet 1> There is no limitation on the use of the porous liquid crystal polymer sheet 1. Examples of uses of the porous liquid crystal polymer sheet 1 include an insulating layer for a wiring circuit board and an antenna substrate for wireless communication.

[0073] Next, an example of a wiring circuit board having a porous liquid crystal polymer sheet 1 as an insulating layer is shown in FIG.

[0074] 5, the wired circuit board 51 extends in a planar direction. The wired circuit board 51 has a sheet shape. The wired circuit board 51 includes an insulating layer 52 and a conductor layer 53 arranged in this order toward one side in a thickness direction.

[0075] The insulating layer 52 is made of the porous liquid crystal polymer sheet 1 described above.

[0076] The conductor layer 53 is in contact with one surface in the thickness direction of the insulating layer 52. The conductor layer 53 has a predetermined wiring pattern .

[0077] To obtain wired circuit board 51, for example, laminate 56 including insulating layer 52 and conductive sheet 55 is prepared. Conductive sheet 55 is depicted by an imaginary line in Fig. 5. For example, a nonporous laminate (indicated by the imaginary lines in Fig. 3A and Fig. 4A) including nonporous sheet 21 and conductive sheet 55 is prepared, and nonporous sheet 21 in the nonporous laminate is made porous using the methods described above (extraction method, foaming method), thereby obtaining laminate 56.

[0078] Thereafter, the conductive sheet 55 in the laminate 56 is patterned to form the conductive layer 53. For example, etching is used for the patterning.

[0079] <Effects> This porous liquid crystal polymer sheet has a porosity P of 20% or more and 90% or less and a thickness T of 1 μm or more and 240 μm or less, and therefore has excellent low resilience while being able to maintain its sheet shape.

[0080] Furthermore, if the melting point of the porous liquid crystal polymer sheet is 200° C. or higher, it will be easy to handle and process.

[0081] Furthermore, if the repulsive force R of the porous liquid crystal polymer sheet in the low repulsion test is 50 [mN / mm] or less, the sheet has excellent low repulsion properties.

[0082] Furthermore, if the repulsive force R [mN / mm], the thickness T [μm], and the porosity P [%] of this porous liquid crystal polymer sheet satisfy the following formula [1], it can maintain its shape, has excellent handling properties, and also has excellent low repulsive properties.

[0083] R / (T / P)≦12.5 [1]

[0084] Furthermore, if the dielectric constant of the porous liquid crystal polymer sheet at 10 GHz is 2.50 or less, the porous liquid crystal polymer sheet has a low dielectric constant.

[0085] The wired circuit board 51 shown in FIG. 5 includes the porous liquid crystal polymer sheet as the insulating layer 52, and therefore has excellent low resilience while being able to maintain the shape of the sheet.

[0086] <Modification> In the modified example, the same components and steps as those in the first embodiment are denoted by the same reference numerals, and detailed descriptions thereof will be omitted. Furthermore, the modified example can achieve the same effects as those in the first embodiment unless otherwise specified. Furthermore, the first embodiment and its modified example can be combined as appropriate.

[0087] In a modified extraction method, the seventh step (thinning the porous liquid crystalline polymer sheet) can be carried out after the third step.

[0088] A variant of the foaming method does not include the seventh step.

[0089] The modified printed circuit board includes a conductor layer, an insulating layer, and another conductor layer in this order toward one side in the thickness direction. [Example]

[0090] The present invention will be described in more detail below with reference to examples and comparative examples. It should be noted that the present invention is not limited to these examples and comparative examples. The specific numerical values ​​of the blending ratios (content ratios), physical property values, parameters, etc. used in the following description can be replaced with the upper limit (a numerical value defined as "equal to or less than") or lower limit (a numerical value defined as "equal to or more than" or "exceeding") of the corresponding blending ratios (content ratios), physical property values, parameters, etc. described in the "Description of the Invention" above.

[0091] <Production of Porous Liquid Crystal Polymer Sheet 1 by Foaming Method> Example 1 4th step The liquid crystal polymer, UENO LCP A8100 (melting point 220°C, thermal expansion coefficient 23 ppm / K, dielectric constant 3.0 at 10 GHz) manufactured by Ueno Pharmaceutical Co., Ltd., was kneaded in a Labo Plastomill (model number: 100C100) manufactured by Toyo Seiki Co., Ltd., and then a non-porous sheet 21 with a thickness of 200 μm was produced using a manual hydraulic vacuum press (model number: 11FD) manufactured by Imoto Manufacturing Co., Ltd. (step 4, Figure 4A). The kneading temperature was 210°C, and the rotation speed was 30 min. -1 The temperature in the press was 230° C. and the pressure was 4 MPa.

[0092] 5th step Using an AKICO "CO2 Supercritical Fluid Experimental Apparatus," supercritical carbon dioxide as a supercritical fluid was impregnated into the non-porous sheet 21 (step 5, FIG. 4B). In step 5, the temperature of the supercritical carbon dioxide was 230°C, the pressure of the supercritical carbon dioxide was 25 MPa, and the impregnation time (extraction time) was 30 minutes.

[0093] 6th step The pressure in the pressure vessel 31 was reduced while the supercritical carbon dioxide inside the pressure vessel 31 was removed (sixth step, FIG. 4C). The final temperature of the pressure vessel 31 at that time was 30° C. In the sixth step, a porous liquid crystal polymer sheet 1 having a thickness of 0.65 mm was obtained.

[0094] 7th step The porous liquid crystal polymer sheet 1 obtained in the sixth step was thinned by heat pressing (seventh step, FIG. 4D). The temperature in the heat pressing was 245°C, and the pressure was 2 MPa. A spacer member 45 with a thickness of 0.05 mm was used in the heat pressing.

[0095] In this way, a porous liquid crystal polymer sheet 1 having a plurality of pores 2 was produced.

[0096] <Examples 2, 4, and 6, and Comparative Examples 1 to 3> A porous liquid crystal polymer sheet 1 was produced using the same foaming method as in Example 1. However, the foaming conditions were changed as shown in Table 1.

[0097] <Production of Porous Liquid Crystalline Polymer Sheet 1 by Extraction Method>

[0098] Example 3 1st step A composition was prepared by kneading 100 parts by volume of UENO LCP A8100 (melting point 220°C, thermal expansion coefficient 23 ppm / K, dielectric constant 3.0 at 10 GHz) manufactured by Ueno Pharmaceutical Co., Ltd. as a liquid crystal polymer and 134 parts by volume of caffeine (mass loss rate at 230°C: 8% by mass) as a porosifying agent in a Labo Plastomill (model number: 100C100) manufactured by Toyo Seiki Seisakusho Co., Ltd. (Step 1, Figure 3A). The kneading temperature was 210°C, and the rotation speed was 10 min. -1 It was.

[0099] Next, a non-porous sheet 21 having a thickness of 180 μm was produced from the kneaded mixture using a manual hydraulic vacuum press (model number: 11FD) manufactured by Imoto Machinery Co., Ltd. The temperature in the press was 230° C. and the pressure was 4 MPa.

[0100] 2nd process Using an AKICO "CO2 Supercritical Fluid Experimental Apparatus," the porosifying agent was extracted from the non-porous sheet 21 using supercritical carbon dioxide as the supercritical fluid (second step, FIG. 3B). In the second step, the temperature of the supercritical carbon dioxide was 152°C, the pressure of the supercritical carbon dioxide was 25 MPa, and the impregnation time (extraction time) was 30 minutes.

[0101] 3rd process While removing the supercritical carbon dioxide inside the pressure vessel 31, the pressure in the pressure vessel 31 was reduced, and the final temperature of the pressure vessel 31 was set to 175° C. As a result, a porous liquid crystal polymer sheet 1 having a thickness of 180 μm was obtained (third step).

[0102] <Example 5> A porous liquid crystal polymer sheet 1 was produced using the same extraction method as in Example 3. However, the extraction conditions were changed as shown in Table 2.

[0103] <Evaluation> The porous liquid crystal polymer sheets 1 of the examples and comparative examples were evaluated for the following items. The results are shown in Table 3.

[0104] <Thickness T> The thickness T of the porous liquid crystal polymer sheet 1 was measured using a contact type film thickness meter (model number R1-205) manufactured by Peacock Co., Ltd.

[0105] <Porosity P> The specific gravity G1 of the porous liquid crystal polymer sheet 1 and the specific gravity G0 of the non-porous sheet 21 made of a liquid crystal polymer corresponding to the porous liquid crystal polymer sheet 1 were measured using an electronic hydrometer (model number: EW300SG) manufactured by Alpha Mirage, Inc. Then, the porosity P of the porous liquid crystal polymer sheet 1 was calculated using the following formula.

[0106] P = 100 × (1 − G1 / G0) P: Porosity of the porous liquid crystal polymer sheet 1 G1: Specific gravity of porous liquid crystal polymer sheet 1 G0: Specific gravity of non-porous sheet 21

[0107] <Minimum and maximum lengths> The minimum and maximum lengths of the pores 2 in the porous liquid crystal polymer sheet 1 were measured by image analysis of cross-sectional SEM observation.

[0108] <Low resilience test> A porous liquid crystal polymer sheet 1 was cut to a length of 30 mm and a width of 10 mm to prepare a sample 10. As shown in FIG. 1, the sample 10 was folded so that both longitudinal ends 11 of the sample 10 were close to each other, one thickness-wise surface 12 of each end 11 faced each other, and the distance between the other thickness-wise surfaces 13 of each end 11 was 3 mm. When the sample 10 was folded, two plates 14 were brought into contact with both ends of the other thickness-wise surface 13, respectively. The two plates were parallel. The repulsive force R [mN / mm] in the opposing direction of the folded sample 10 was measured.

[0109] At the same time, R / (T / P) was calculated and its value was also calculated. .value The unit is [mN / mm / (μm / %)]. R: Repulsive force of the porous liquid crystal polymer sheet 1 [mN / mm] T: Thickness of the porous liquid crystal polymer sheet 1 [μm] P: Porosity of the porous liquid crystal polymer sheet 1 [%]

[0110] <Second low resilience test> First, a porous liquid crystal polymer sheet 1 was cut to a length of 30 mm and a width of 10 mm to prepare a sample 10. Next, as shown in FIG. 2, a central portion 16 of the sample 10 was wrapped around a rod 15 having a radius of 6 mm. At this time, the presence or absence of creases in the central portion 16 was visually observed. Porous liquid crystal polymer sheets 1 in which no creases were observed were marked with "◯", and porous liquid crystal polymer sheets 1 in which creases were observed were marked with "X".

[0111] <Dielectric constant> The dielectric constant of the porous liquid crystal polymer sheet 1 at 10 GHz was measured using a "10 GHz SPDR resonator" manufactured by QWED Inc., in accordance with the SPDR method in accordance with ASTM D150.

[0112] <Melting point> Since the melting point of the liquid crystal polymer, UENO LCP A8100 manufactured by Ueno Pharmaceutical Co., Ltd., is 220°C, the melting point of the porous liquid crystal polymer sheet 1 was determined to be 220°C.

[0113] [Table 1]

[0114] [Table 2]

[0115] [Table 3] [Explanation of symbols]

[0116] 1. Porous liquid crystal polymer sheet 10 Samples 11 Both ends 12 One side 13 Other side 14 boards 51 Wired circuit board 52 Insulating layer P porosity R Repulsion force

Claims

1. The porosity P is 20% or more and 90% or less, The thickness T is 31 μm or more and 240 μm or less, The dielectric constant at 10 GHz is 2.50 or less, A porous liquid crystal polymer sheet having a repulsion force R of 50 [mN / mm] or less in the low repulsion test described below. <Low resilience test> The porous liquid crystal polymer sheet is cut into a shape of 30 mm in length and 10 mm in width to prepare a sample. The sample is folded so that both longitudinal ends of the sample approach each other, one side of each end faces the other in the thickness direction, and the distance between the other sides of each end faces the other in the thickness direction is 3 mm. The repulsive force of the folded sample in the opposing direction is measured.

2. 2. The porous liquid crystal polymer sheet according to claim 1, which has a melting point of 200° C. or higher.

3. The porous liquid crystal polymer sheet according to claim 1, wherein the repulsive force R [mN / mm], the thickness T [μm], and the porosity P [%] satisfy the following formula [1]. R / (T / P)≦12.5 [1]

4. A wiring circuit board comprising the porous liquid crystal polymer sheet according to any one of claims 1 to 3 as an insulating layer.

Citation Information

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