Coating liquid for forming conductive film

The coating liquid for forming conductive films, with a specific composition and particle size distribution, addresses the issue of reduced conductivity over time by maintaining the surface area of conductive particles and preventing excessive binder coverage, achieving excellent storage stability and conductivity.

JP7688979B2Active Publication Date: 2025-06-05JGC CATALYSTS & CHEMICALS LTD
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
JP2021004049
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-31
Filing Date
2021-01-14
Publication Date
2025-06-05
Estimated Expiration
2041-01-14

AI Technical Summary

Technical Problem

Conductive films formed from coating liquids containing conductive particles and a binder component suffer from reduced conductivity over time due to the binder component covering the surfaces of the conductive particles, leading to inferior storage stability.

Method used

A coating liquid comprising chain-shaped conductive particles, a high-boiling point solvent, a low-boiling point solvent, and an alkoxysilane oligomer, with specific particle size distribution and solvent ratio to maintain the conductive particles' surface area and prevent excessive binder coverage.

Benefits of technology

The coating liquid achieves excellent storage stability and conductivity by maintaining the surface area of conductive particles and preventing excessive binder coverage, resulting in a smooth and uniform conductive film.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007688979000001
    Figure 0007688979000001
  • Figure 0007688979000002
    Figure 0007688979000002
  • Figure 0007688979000003
    Figure 0007688979000003
Patent Text Reader

Abstract

To improve the storage stability of a coating liquid containing conductive particles and a binder component binding to the conductive particles.SOLUTION: The coating liquid for forming a conductive film according to the present invention includes a chain conductive particle, a high boiling point solvent, a low boiling point solvent, and an alkoxy silane oligomer capable of binding to the chain conductive particles. The coating liquid contains the chain conductive particles in the range from 35 to 75 mass% relative to a total amount of the chain conductive particle and alkoxy silane oligomer, and in the particle size distribution of the coating liquid measured by the dynamic light scattering type particle size distribution meter, the average particle diameter is 100 nm or larger, and, by the volume reference, the difference (D84-D16) between the particle diameter D16 whose cumulative amount becomes 16% from a small side of the particle size and the particle diameter D84 whose cumulative amount becomes 84% is 200 nm or larger.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present invention relates to a coating liquid for forming a conductive film, which contains conductive particles and a binder component, and in particular to a coating liquid having excellent storage stability. [Background technology]

[0002] Conventionally, a conductive coating has been formed on a substrate using a coating liquid containing conductive particles. For example, transparent conductive films are used in display devices, touch panels, solar cells, etc. As a coating liquid for forming a conductive film, a composition containing chain-shaped conductive particles and an alkoxysilane oligomer is known (for example, Patent Document 1). In Patent Document 1, an alkoxysilane oligomer is used as a binder component. Since the alkoxysilane oligomer easily bonds with the chain-shaped conductive particles, the strength of the obtained film can be improved. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2019-157026 A Summary of the Invention [Problem to be solved by the invention]

[0004] As in Patent Document 1, in a coating liquid containing conductive particles and a binder component that bonds to the conductive particles, the surfaces of the conductive particles become covered with the binder component over time. Because the binder component is insulating, a film containing conductive particles covered with the binder component is unable to form a conductive path by a large number of conductive particles, resulting in a problem that the film has lower conductivity than a film formed with an initial coating liquid.

[0005] SUMMARY OF THE PRESENT EMBODIMENT An object of the present invention is to provide a coating liquid for forming a conductive film having excellent storage stability. [Means for solving the problem]

[0006] The coating liquid for forming a conductive film of the present invention contains chain-shaped conductive particles, a high-boiling point solvent, a low-boiling point solvent, and an alkoxysilane oligomer capable of bonding to the chain-shaped conductive particles. The chain-shaped conductive particles are contained in an amount of 35 to 75 mass % based on the total amount of the chain-shaped conductive particles and the alkoxysilane oligomer. In addition, in the particle size distribution of the coating liquid measured with a dynamic light scattering type particle size distribution analyzer, the average particle size is 100 nm or more, and the particle size D at which the cumulative volume of the particles from the smaller particle size side is 16% is 100 nm or more. 16 and the particle diameter D when it becomes 84% 84 Difference from (D 84 -D 16 ) is 200 nm or more.

[0007] Furthermore, the mass ratio of the high boiling point solvent to the low boiling point solvent was set in the range of 1: 9 to 1: 3. Furthermore, the water content in the coating liquid was set to less than 5 mass %.

[0008] The coating liquid contained 0.0005 to 0.008 parts by mass of acid relative to the mass of the chain-like conductive particles. Furthermore, the weight-average molecular weight of the alkoxysilane oligomer was 3,500 to 5,000. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0009] In the coating liquid of the present invention, chain-shaped conductive particles and a binder component are dispersed in a high boiling point solvent and a low boiling point solvent. Here, the binder component is an alkoxysilane oligomer capable of bonding to the surface of the chain-shaped conductive particles. This coating liquid contains 35 to 75 mass % of the chain-shaped conductive particles with respect to the total mass of the chain-shaped conductive particles and the binder component. In addition, when the coating liquid is measured with a dynamic light scattering type particle size distribution meter to obtain a particle size distribution, the particle diameter D at which the cumulative amount from the smallest particle diameter side reaches 16% on a volume basis is 16 and the particle diameter D when it becomes 84% 84 Difference from (D 84 -D 16 ) is 200 nm or more, and the average particle size is 100 nm or more. Hereinafter, the above-mentioned particle size difference (D 84 -D 16 ) is called the width of the particle size distribution.

[0010] Here, the high boiling point solvent is a solvent having a boiling point of 100°C or more at normal pressure, and the low boiling point solvent is a solvent having a boiling point of less than 100°C at normal pressure. The mass ratio of the high boiling point solvent to the low boiling point solvent is preferably 1:9 to 13:7, and most preferably 1:9 to 1:3. When expressed as the mass ratio of the high boiling point solvent to the total amount of the high boiling point solvent and the low boiling point solvent, the mass ratio is preferably 0.10 to 0.65, and most preferably 0.10 to 0.25. Within this range, the drying speed during application is appropriate, so that defects in the coating film such as streaks and unevenness, and solvent remaining in the film, etc. are unlikely to occur. Therefore, a smooth and uniform conductive film can be formed.

[0011] The chain-like conductive particles are particles in which three or more primary particles (conductive inorganic particles) are linked in a chain shape. There may be a part where the particles are branched and linked. That is, there is a structure in which three or more primary particles are linked at the main chain, and a branch part may be present. In this case, the average particle diameter of the primary particles is preferably 2 to 50 nm. If the average particle diameter is too small, the crystal structure is underdeveloped, and the conductivity of the primary particles themselves may not be sufficient. Conversely, if the average particle diameter is too large, it is difficult to develop a chain structure, and even if the chain structure is formed, it is difficult to effectively form a conductive path, and there is a risk that the conductivity of the film may not be sufficient.

[0012] The alkoxysilane oligomer is a hydrolysis product (partial hydrolysis product, hydrolysis polymer, etc.) obtained by hydrolyzing at least a part of an alkoxysilane, and has a weight average molecular weight of preferably 3000 to 6500, more preferably 3500 to 5000. Here, the weight average molecular weight is a value calculated in terms of polystyrene determined by GPC.

[0013] The coating liquid contains 35 to 75% by mass of the chain conductive particles relative to the total amount of the chain conductive particles and the binder component. 45 to 70% by mass is particularly preferred. If the concentration of the chain conductive particles in the coating liquid is low, the formation of conductive paths may be insufficient, and the conductivity of the conductive film may be insufficient or non-uniform. Also, if the concentration of the chain conductive particles is too high, the transmittance and hardness of the resulting conductive film may decrease.

[0014] In the coating liquid according to the present invention, the chain-shaped conductive particles not only exist individually, but also form aggregates that do not precipitate. In addition, primary particles that remain in an unlinked form may also exist in this coating liquid. Such a coating liquid is measured by a dynamic light scattering particle size distribution meter to have an average particle size of 100 nm or more and a particle size distribution width of 200 nm or more. In a coating liquid containing such aggregates that do not precipitate, the surface area of ​​the chain-shaped conductive particles that can react with the binder component (having hydroxyl groups, etc.) is relatively small, so that the surface of the chain-shaped conductive particles is not easily covered with the insulating binder component. In addition, a conductive path is easily formed sufficiently in the conductive film formed by applying the coating liquid. On the other hand, in a coating liquid that does not have the above-mentioned particle size distribution, the chain-shaped conductive particles are highly dispersible, so that a conductive path between the chain-shaped conductive particles is not easily formed, and the surface area of ​​the chain-shaped conductive particles is large, so that the reaction between the particles and the binder component proceeds quickly, and the surface of the particles is easily covered with the insulating component. Therefore, it does not become a coating liquid for forming a conductive film with excellent storage stability.

[0015] In addition, the total solid content concentration (total solid content concentration) of the chain-like conductive particles and the alkoxysilane oligomer in this coating liquid is preferably in the range of 0.1 to 15 mass%, more preferably in the range of 0.5 to 10 mass%. When the total solid content concentration is in the above range, the film thickness obtained under normal coating conditions can be controlled to an appropriate thickness. In addition, the storage stability of the coating liquid is sufficient, so that the characteristics of the obtained conductive film, such as film thickness, conductivity, hardness, etc., can be stably obtained.

[0016] The viscosity of the coating solution at 20° C. is preferably in the range of 0.5 to 20 mPa s, and more preferably in the range of 1 to 10 mPa s. When the viscosity at 20° C. is in the above range, the film thickness obtained by a general coating method can be controlled to an appropriate thickness.

[0017] Furthermore, since the coating liquid contains aggregates of chain-shaped conductive particles, the viscosity is likely to increase when the coating liquid is concentrated from a low concentration state. In a coating liquid that shows an increase in viscosity, the chain-shaped conductive particles are less likely to break apart when forming a conductive film, making it easier to form conductive paths. Specifically, when concentrated to a total solid content of 30%, the viscosity at 20°C is preferably in the range of 10 to 300 mPa·s, and more preferably in the range of 20 to 100 mPa·s.

[0018] The water content of the coating solution is preferably less than 5% by mass. If the coating solution contains 5% by mass or more of water, the hydrolysis reaction of the alkoxysilane oligomer is accelerated, and further, the reaction between the surface of the chain-like conductive particles and the alkoxysilane oligomer is accelerated, and the surface of the chain-like conductive particles may be covered with an insulating component. In a conductive film containing chain-like conductive particles in such a state, conductive paths may not be sufficiently formed in the film, and good conductivity may not be obtained.

[0019] Each component constituting the coating liquid will be described in detail below.

[0020] <Alkoxysilane oligomer> The weight average molecular weight of the alkoxysilane oligomer is preferably 3500 to 5000. The alkoxysilane oligomer is a hydrolysis polymer of an alkoxysilane represented by the following formula (1), where n is an integer of 0 to 2. When n is 3, only bonds between two molecules can be formed, so that an oligomer having a weight average molecular weight of 3500 or more cannot be formed. Here, the smaller n is the more preferable, and it is most preferable to use an alkoxysilane with n being 0. When such an alkoxysilane is used, the alkoxysilanes form a dense three-dimensional network structure, and the hardness of the entire film can be increased.

[0021] R 1 n -Si(OR 2 ) 4-n (1) Here, R 1 and R 2is a hydrogen atom, a halogen atom, or an unsubstituted or substituted hydrocarbon group having 1 to 10 carbon atoms, and may be the same or different. Generally, n is an integer of 0 to 3.

[0022] The alkoxysilane oligomer present in the coating solution is preferably 1.2 to 3.3 mass %, more preferably 1.5 to 2.8 mass %, as solid content. If the concentration of the alkoxysilane oligomer is low, the binder component of the film is reduced, and the adhesion between the chain-like conductive particles in the film is insufficient, and sufficient hardness may not be obtained. If the concentration is too high, the reaction with the surface of the chain-like conductive particles in the coating solution may proceed excessively, and the storage stability may decrease.

[0023] Specific examples of alkoxysilanes are shown in Table 1.

[0024] [Table 1]

[0025] <Chain conductive particles> As described above, the chain-like conductive particles are particles in which three or more primary particles are linked in a chain shape. The primary particles are conductive inorganic particles in a monodispersed state. The average particle diameter of the primary particles is 2 to 50 nm. From an image taken with a transmission electron microscope (TEM), the particle diameters of 100 random primary particles are measured, and the average value is taken as the average particle diameter of the primary particles. Furthermore, 50 random particles are selected from this image, and the number of connections of each particle is measured. The average number of connections of the 50 particles is taken as the average number of connections. The average number of connections is preferably 3 or more, and particularly preferably 5 or more. If the average number of connections of the primary particles is small, there is a risk that the effect of improving the conductivity is not sufficiently obtained.

[0026] Here, the primary particles may be particles having electrical conductivity. For example, metal oxide particles can be used. Transparency may be required depending on the application of the film. Examples of such metal oxide particles include indium oxide and tin oxide. In addition, particles containing one or more types of metal oxide as the main component and doped with tin or antimony, such as antimony-doped tin oxide (ATO) and tin-doped indium oxide (ITO), can also be used. In terms of excellent transparency, electrical conductivity, and chemical properties, particles containing at least one of ATO and ITO are preferred, and ATO particles are particularly preferred.

[0027] The chain-shaped conductive particles are preferably surface-treated with the alkoxysilane shown in formula (1) above. By performing the surface treatment, it is possible to prevent the chain-shaped conductive particles from dispersing again into the original primary particles, as well as to improve the dispersibility in the coating liquid and suppress the occurrence of aggregation such as precipitation.

[0028] In addition to those shown in Table 1, the alkoxysilane usable here may also include trimethylchlorosilane where n=3, and these may be used alone or in combination of two or more kinds.

[0029] The amount of such alkoxysilane used varies depending on the type of alkoxysilane, the particle size of the chain-shaped conductive particles, etc., but the ratio of the amount of the chain-shaped conductive particles to the alkoxysilane (hydrolyzable organic silicon compound / chain-shaped conductive particles, weight ratio) is preferably in the range of 0.01 to 0.5, and more preferably 0.02 to 0.3. If the ratio of the amount of the chain-shaped conductive particles to the alkoxysilane is less than the lower limit, the particles connected in a chain may return to their original primary particles in the coating liquid, and even if the connection is maintained, the dispersibility in the paint may be insufficient. For this reason, the coating film formed using this paint may have high haze and insufficient antistatic performance. If the ratio of the amount of the chain-shaped conductive particles to the alkoxysilane exceeds the upper limit, the surface of the chain-shaped conductive particles may be thickly coated with the hydrolyzate of the alkoxysilane, and the conductivity may decrease.

[0030] <Solvent> The solvent used here may be removed after application by a drying process, etc. Examples of high boiling point solvents include 1-methoxy-2-propanol, diacetone alcohol, ethylene glycol, diethylene glycol, etc., and examples of low boiling point solvents include methanol, ethanol, isopropyl alcohol, acetone, etc.

[0031] The high boiling point solvent and the low boiling point solvent are preferably present as a mixture, and the mass ratio of the high boiling point solvent to the total amount of the high boiling point solvent and the low boiling point solvent is suitably 0.10 to 0.65. By using such a mixed solvent, the drying speed when applying the coating liquid becomes appropriate. This mass ratio is more preferably 0.10 to 0.40, and most preferably 0.10 to 0.25.

[0032] <Acid> In addition, the coating liquid preferably contains an acid. Examples of the acid include hydrochloric acid, nitric acid, acetic acid, and phosphoric acid. Such an acid promotes the aggregation of the chain-shaped conductive particles and promotes the formation of a conductive path in the coating liquid. The amount of the acid is preferably 0.0005 to 0.008 parts by mass, more preferably 0.001 to 0.004 parts by mass, relative to the mass of the chain-shaped conductive particles. If the amount of the acid is large, the chain-shaped conductive particles may be excessively aggregated, and precipitation of the chain-shaped conductive particles may occur. The conductive film formed from such a coating liquid may have high haze and is not suitable as a transparent conductive film. If the amount of the acid is small, the aggregation of the chain-shaped conductive particles may not occur sufficiently, and the bond between the alkoxysilane oligomer and the chain-shaped conductive particles may be promoted, and the surface of the chain-shaped conductive particles may be covered with an insulating component. The conductive film formed using such a coating liquid may not have a sufficient conductive path formed in the film, and may show lower conductivity than the conductive film formed from the initial coating liquid.

[0033] The method for producing the coating liquid will now be described in detail.

[0034] First, a dispersion liquid is prepared in which chain-shaped conductive particles made of a conductive inorganic oxide are dispersed. Such a dispersion liquid can be prepared by the method disclosed in JP-A-2006-339113, etc. The concentration of the chain-shaped conductive particles is preferably 20% by mass or more.

[0035] Next, the first solvent containing at least one of a high boiling point solvent and a low boiling point solvent and the above-mentioned alkoxysilane oligomer are mixed into the dispersion liquid of the chain-shaped conductive particles. At this time, 8.5 to 15 parts by mass of the chain-shaped conductive particles and the alkoxysilane oligomer are mixed in total with respect to 100 parts by mass of the dispersion liquid. Note that the first solvent may be added after mixing the dispersion liquid of the chain-shaped conductive particles and the alkoxysilane oligomer. The mixture thus obtained is stirred for 1 hour at a temperature from room temperature to a temperature lower than the boiling point of the first solvent.

[0036] Next, a second solvent containing at least one of a high boiling point solvent and a low boiling point solvent is added to the mixed solution to obtain a coating solution. The first solvent and the second solvent may be the same or different, but the obtained coating solution contains both a high boiling point solvent and a low boiling point solvent. At this time, the chain conductive particles and the alkoxysilane oligomer are added in a total amount of 3.5 to 10 parts by mass per 100 parts by mass of the coating solution.

[0037] The conductive film obtained by curing the coating liquid is explained below. The solvent is removed by heating the liquid film, and the dehydration condensation reaction between the chain-like inorganic conductive particles and the alkoxysilane oligomer proceeds. The conductive film has excellent electrical properties such as excellent conductivity, and is suitable for parts that require optical and electrical properties.

[0038] The substrate is not particularly limited, and can be any substrate that can form a uniform liquid film and can withstand the curing temperature, such as glass or plastic. The coating method is also not particularly limited, and can be a bar coater method, a dip method, a spray method, a spinner method, a roll coating method, a gravure coating method, a slit coating method, a pressure coating method, or the like. The average thickness of the film can be appropriately selected depending on the application. When forming a film by coating, the average thickness is preferably 80 to 300 nm.

[0039] Examples of coating solutions containing acids will be described in detail below.

[0040] [Example 1] First, 23.0 g of alkoxysilane oligomer (solid content concentration 9.8% by mass) and 13.4 g of chain-shaped conductive particles (solid content concentration 20.5% by mass) were mixed and stirred for 60 minutes. The total solid content concentration of the alkoxysilane oligomer and chain-shaped conductive particles in this solution was 13.7% by mass. The alkoxysilane oligomer used here was obtained by hydrolyzing tetramethoxysilane and had a molecular weight of 3810. It also contained 0.002 parts by mass of hydrochloric acid relative to the solid content mass. The chain-shaped conductive particles are particles in which ATO particles surface-treated with tetraethoxysilane are used as primary particles and linked in a chain shape.

[0041] 43.6 g of isopropyl alcohol was added to this mixed solution while stirring, and the mixture was stirred for 5 minutes. Then, 20.0 g of 1-methoxy-2-propanol was added, and the mixture was stirred for 15 minutes and filtered to prepare a coating solution with a total solid content of 5% by mass. The preparation conditions of the coating solution are shown in Table 2, and the physical properties of the obtained coating solution are shown in Table 3.

[0042] This coating solution was applied onto a glass substrate by a bar coater method, dried at 80° C. for 1 minute, and then heated in a dryer at 130° C. for 30 minutes. The surface resistance of the obtained film-coated substrate was measured. The results are shown in Table 2.

[0043] The coating solution was left to stand for 24 hours in a bath with water temperature adjusted to 40°C. The coating solution after the heating treatment was applied onto a glass substrate by a spin coater method, dried at room temperature for 1 minute, and then heated in a dryer at 130°C for 30 minutes. The surface resistance of the obtained film-coated substrate was measured. The results are shown in Table 4.

[0044] In the examples and comparative examples described later, the physical properties of the coating liquid and the film-coated substrate were measured and evaluated as follows.

[0045] (Average particle size, particle size distribution range) The coating solution was measured using a dynamic light scattering particle size distribution analyzer (NANOTRAC Wave 2-UT151 manufactured by Microtrac), and the average particle size and particle size distribution width (particle size difference: D 84 -D 16 ) was calculated. Table 3 shows half the value of this particle size distribution width.

[0046] (viscosity) The viscosity was measured at 20° C. using an E-type viscometer (TV-25 model, manufactured by Toki Sangyo Co., Ltd.). The viscosity was measured for a coating solution with a total solids concentration of 5% by mass and a coating solution concentrated to a total solids concentration of 30%.

[0047] (Surface resistance) The surface resistance was measured using a surface resistance measuring device (Hirester UX MCP-HT800 manufactured by Mitsubishi Chemical Analytech Co., Ltd.).

[0048] (Storage stability) The storage stability was evaluated based on the ratio calculated by (surface resistance value of the substrate with a film formed by the coating liquid after heat treatment) / (surface resistance value of the substrate with a film formed by the initial coating liquid).

[0049] [Example 2] In this example, the amount of alkoxysilane oligomer added was 20.4 g, the amount of chain-like conductive particles added was 14.6 g, and the amount of isopropyl alcohol added was 45.0 g. Except for this, the coating solution and the film-coated substrate were prepared and evaluated in the same manner as in Example 1.

[0050] [Example 3] In this example, the amount of alkoxysilane oligomer added was 28.1 g, the amount of chain-like inorganic conductive particles added was 11.1 g, and the amount of isopropyl alcohol added was 40.8 g. Except for this, the coating solution and the film-coated substrate were prepared and evaluated in the same manner as in Example 1.

[0051] [Comparative Example 1] 13.4 g of the same chain conductive particles (solid content concentration 20.5% by mass) as in Example 1 was added to 43.6 g of isopropyl alcohol and stirred for 5 minutes. Then, 20.0 g of 1-methoxy-2-propanol was mixed and stirred for 15 minutes. 23.0 g of the same alkoxysilane oligomer as in Example 1 was mixed and stirred for 60 minutes. At this time, the total solid content concentration of the alkoxysilane oligomer and the chain conductive particles was 5% by mass. Then, it was filtered with a 1 μm nylon filter to prepare a coating solution with a total solid content concentration of 5% by mass. The concentrations of each component in the obtained coating solution are shown in Table 1. Other than this, it was prepared and evaluated in the same manner as in Example 1.

[0052] [Comparative Example 2] The amount of isopropyl alcohol added was 45.0 g, the amount of chain-like conductive particles added was 14.6 g, and the amount of alkoxysilane oligomer added was 20.4 g, the same as in Example 1. Except for this, a coating solution and a film-coated substrate were prepared and evaluated in the same manner as in Comparative Example 1.

[0053] [Comparative Example 3] The amount of isopropyl alcohol added was 40.8 g, the amount of chain-like conductive particles added was 11.1 g, and the amount of alkoxysilane oligomer added was 28.1 g, the same as in Example 1. Other than this, a coating solution and a film-coated substrate were prepared and evaluated in the same manner as in Comparative Example 1.

[0054] [Table 2]

[0055] [Table 3]

[0056] [Table 4]

Claims

1. A coating liquid for forming a conductive film, comprising: chain-like conductive particles; a high-boiling point solvent; a low-boiling point solvent; and an alkoxysilane oligomer capable of bonding to the chain-like conductive particles, the coating liquid contains the chain-like conductive particles in an amount of 35 to 75 mass % based on the total amount of the chain-like conductive particles and the alkoxysilane oligomer; In the particle size distribution measured by a dynamic light scattering particle size distribution meter of the coating liquid, the average particle size is 100 nm or more, and the particle size D at which the cumulative amount from the small particle size side is 16% on a volume basis is 16 and the particle diameter D when it becomes 84% 84 Difference from (D 84 -D 16 ) is 200 nm or more.

2. 2. The coating liquid according to claim 1, wherein a mass ratio of the high boiling point solvent to the low boiling point solvent is in the range of 1:9 to 1:

3.

3. 3. The coating liquid according to claim 1, wherein the coating liquid contains less than 5% by mass of water.

4. 4. The coating liquid according to claim 1, wherein the coating liquid contains an acid, and a ratio of a mass of the acid to a mass of the chain-like conductive particles is 0.0005 to 0.

008.

5. The coating liquid according to any one of claims 1 to 4, wherein the alkoxysilane oligomer has a weight average molecular weight of 3,500 to 5,000.

6. 6. The coating liquid according to claim 1, wherein the chain-like conductive particles are formed by linking three or more primary particles, and the primary particles have an average particle size of 2 to 50 nm.

7. 7. The coating liquid according to claim 6, wherein the average number of connections of the chain-like conductive particles is 3 to 20.

Citation Information

Patent Citations

  • Nanometer ultrathin conductive coating composition and preparation method thereof

    CN103087559A

  • Method for producing chain antimony pentoxide fine particle and substrate with film containing the same

    JP2010138040A

  • Method of manufacturing optical laminate

    JP2010139878A

  • Transparent electroconductive coating composition, transparent electroconductive film, and touch panel function-internalized horizontal electric field-style liquid crystal display panel

    JP2014177552A

  • Method for manufacturing transparent conductive substrate and in-plane switching type liquid crystal display panel including touch panel function

    JP2017168211A