Barrier film, and wavelength conversion sheet, backlight, and liquid crystal display device using the same

A barrier film with defined layer thicknesses and compositions stabilizes quantum dots in wavelength conversion sheets, addressing color tone instability in liquid crystal displays by enhancing adhesion and barrier properties.

JP7754097B2Active Publication Date: 2025-10-15DAI NIPPON PRINTING CO LTD
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Patent Information

Application Number
JP2022543355
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-19
Filing Date
2021-08-03
Publication Date
2025-10-15
Estimated Expiration
2041-08-03

AI Technical Summary

Technical Problem

Liquid crystal display devices using quantum dots in wavelength conversion sheets experience color tone instability due to swelling of the organic coating layer in high-humidity environments, leading to significant changes in color tone over time.

Method used

A barrier film with specific thickness ratios and compositions of inorganic oxide and organic coating layers, along with a primer layer, is applied to wavelength conversion sheets to maintain color stability. The film consists of a light-transmitting substrate, an inorganic oxide layer, an organic coating layer, another inorganic oxide layer, and a primer layer, with defined thicknesses and ratios to enhance adhesion and barrier properties.

Benefits of technology

The barrier film effectively suppresses color changes in wavelength conversion sheets and backlights, maintaining color purity and stability over time by reducing moisture and oxygen ingress.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Provided is a barrier film capable of, when being applied to a wavelength conversion sheet, suppressing a change in color. This barrier film for this wavelength conversion sheet comprises, on a light-transmitting substrate, an inorganic oxide layer A, an organic coating layer B, an inorganic oxide layer C, and a primer layer D in this order. When the thicknesses of the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C, and the primer layer D are respectively defined as t0, tA, tB, tC, and tD, tB is 150-500 nm, and tD / tB is 0.55-1.65.
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Description

[Technical Field]

[0001] The present disclosure relates to a barrier film, and a wavelength conversion sheet, a backlight, and a liquid crystal display device using the same. [Background technology]

[0002] Demand for liquid crystal display devices is increasing with the development of personal computers, such as portable personal computers. Recently, the popularity of home LCD televisions has also increased, and smartphones and tablet devices are also becoming more widespread. This has led to further expansion of the liquid crystal display device market. Such liquid crystal display devices generally comprise a color filter, a liquid crystal cell, and a backlight. Liquid crystal display devices generally control the intensity of light using the shutter function of the liquid crystal layer in the liquid crystal cell, and display images by dividing the color of each pixel into the three primary colors of R, G, and B using a color filter.

[0003] Cold cathode fluorescent lamps have traditionally been used as the light source for the backlight of liquid crystal display devices, but in order to reduce power consumption and space requirements, the light source for backlights is being replaced by LEDs. The LEDs used as the light source for ordinary backlights are called white LEDs, which are made by combining a blue LED with a YAG yellow phosphor. These white LEDs have a broad spectral distribution of emitted wavelengths and are known as pseudo-white.

[0004] Meanwhile, in recent years, development of backlights using quantum dot technology has also progressed. Quantum dots are nanometer-sized particles of semiconductors. The basic configuration of a backlight using quantum dots is a combination of a light source that generates primary light (such as a blue LED that emits blue light) and quantum dots.

[0005] Quantum dots are nano-sized compound semiconductor particles consisting of semiconductor particles with a core of, for example, CdSe and a shell of ZnS, and ligands surrounding the shell. Quantum dots exhibit the quantum confinement effect because their particle diameter is smaller than the Bohr radius of the exciton of the compound semiconductor. Therefore, the luminous efficiency of quantum dots is higher than that of conventional phosphors that use rare earth ions as activators, achieving a luminous efficiency of over 90%. Furthermore, since the emission wavelength of quantum dots is determined by the band gap energy of the quantized compound semiconductor particles, any emission spectrum can be obtained by changing the particle size of the quantum dots. Backlights that combine these quantum dots with blue LEDs or the like are said to be able to achieve high luminous efficiency and high color purity (see, for example, Patent Documents 1 and 2).

[0006] While quantum dots have the above-mentioned excellent characteristics, they have the problem of being easily deteriorated by the influence of moisture, oxygen, etc. For this reason, it is preferable to protect both sides of the quantum dot-containing layer with a barrier film. Patent Documents 3 and 4 propose a wavelength conversion sheet in which a quantum dot-containing layer is protected by a barrier film having a substrate, an inorganic oxide layer, and an organic coating layer. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] International Publication No. 2012 / 132239 [Patent Document 2] Japanese Patent Application Laid-Open No. 2015-18131 [Patent Document 3] Japanese Patent Application Publication No. 2019-126924 [Patent Document 4] Japanese Patent Publication No. 2020-19141 Summary of the Invention [Problem to be solved by the invention]

[0008] However, in the liquid crystal display devices using the wavelength conversion sheets of Patent Documents 3 and 4, there have been cases where images with a different color tone from the initial color tone have been viewed during continued use. That is, in the liquid crystal display devices using the wavelength conversion sheets of Patent Documents 3 and 4, there have been cases where the color tone has significantly changed when comparing the initial point in time with an arbitrary point in time. Quantum dots are characterized by increasing color purity. Therefore, the instability of the color tone of liquid crystal display devices using quantum dots impairs the characteristics of the liquid crystal display device, and is an extremely important problem in terms of quality.

[0009] In view of the above problems, the present disclosure has an object to provide a barrier film that can suppress a change in color when applied to a wavelength conversion sheet, and a wavelength conversion sheet, a backlight, and a liquid crystal display device using the barrier film. [Means for solving the problem]

[0010] As a result of intensive research to solve the above problems, the present inventors have found that one of the causes of the color change is swelling of the organic coating layer of the barrier film when the wavelength conversion sheet to which the barrier film is applied is exposed to a high-humidity environment. Therefore, the present inventors have investigated reducing the thickness of the organic coating layer to an extent that does not affect the barrier property. However, even when the thickness of the organic coating layer is reduced, there have been many cases where the color change occurred. As a result of further intensive research, the present inventors have found that by setting the thickness of the organic coating layer within a predetermined range and setting the ratio of the thickness of the primer layer formed to improve adhesion to the quantum dot-containing layer to the thickness of the organic coating layer within a predetermined range, it is possible to suppress change in color of a wavelength conversion sheet or the like to which a barrier film is applied.

[0011] The present disclosure provides the following [1] to [6]. [1] A light-transmitting substrate having an inorganic oxide layer A, an organic coating layer B, an inorganic oxide layer C, and a primer layer D in this order on the substrate; The thicknesses of the light-transmitting substrate, the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C, and the primer layer D are defined as t0, t A , t B , t C , and t D When we define t B is 150 nm or more and 500 nm or less, and t D / t B is between 0.55 and 1.65, Barrier film for wavelength conversion sheets. [2] The barrier film according to [1], wherein the inorganic oxide layer A and the inorganic oxide layer C contain aluminum oxide or silicon oxide. [3] The barrier film according to [1] or [2], wherein the organic coating layer B contains polyvinyl alcohol. [4] A wavelength conversion sheet having a quantum dot-containing layer containing quantum dots and barrier films laminated on both sides of the quantum dot-containing layer, wherein the barrier films are formed so that the surfaces of the barrier films according to any one of [1] to [3] that are opposite to the light-transmitting substrate face the quantum dot-containing layer. [5] A backlight comprising at least one light source that emits primary light, an optical plate that is disposed adjacent to the light source and that guides or diffuses light, and a wavelength-converting sheet that is disposed on the light-emitting side of the optical plate, wherein the wavelength-converting sheet is the wavelength-converting sheet according to [4]. [6] A liquid crystal display device comprising a backlight and a liquid crystal panel, wherein the backlight is the backlight described in [5]. [Effects of the Invention]

[0012] The barrier film of the present disclosure, and the wavelength conversion sheet, backlight and liquid crystal display device using the same can suppress changes in color. [Brief explanation of the drawings]

[0013] [Figure 1]FIG. 1 is a cross-sectional view illustrating one embodiment of a barrier film of the present disclosure. [Figure 2] FIG. 1 is a cross-sectional view showing an embodiment of a wavelength conversion sheet according to the present disclosure. [Figure 3] FIG. 1 is a cross-sectional view illustrating one embodiment of a backlight according to the present disclosure. [Figure 4] FIG. 10 is a cross-sectional view showing another embodiment of a backlight according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0014] Hereinafter, embodiments of the present disclosure will be described. In this specification, the notation "AA to BB" means AA or more and BB or less. In this specification, the refractive index of each layer refers to the refractive index at a wavelength of 632.8 nm. The refractive index of each layer can be calculated, for example, by fitting a reflection spectrum measured with a reflectance photometer to a reflection spectrum calculated from an optical model of a multilayer thin film using Fresnel coefficients.

[0015] [Barrier film] The barrier film of the present disclosure comprises: The film has an inorganic oxide layer A, an organic coating layer B, an inorganic oxide layer C, and a primer layer D formed in this order on a light-transmitting substrate, The thicknesses of the light-transmitting substrate, the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C, and the primer layer D are defined as t0, t A , t B , t C , and t D When we define t B is 150 nm or more and 500 nm or less, and t D / t B is 0.55 or more and 1.65 or less, It is used in wavelength conversion sheets.

[0016] Fig. 1 is a cross-sectional view showing an embodiment of a barrier film 100 of the present disclosure. The barrier film 100 of Fig. 1 has an inorganic oxide layer A 21, an organic coating layer B 30, an inorganic oxide layer C 22, and a primer layer D 40, in this order, on a light-transmitting substrate 10.

[0017] <Light transparent base material> The light-transmitting substrate is not particularly limited as long as it is a resin film that does not impair the function of the wavelength-converting sheet when applied to the wavelength-converting sheet. Examples of light-transmitting substrates include resin films formed from one or more resins selected from polyester, triacetyl cellulose (TAC), cellulose diacetate, cellulose acetate butyrate, polyamide, polyimide, polyethersulfone, polysulfone, polypropylene, polymethylpentene, polyvinyl chloride, polyvinyl acetal, polyether ketone, acrylic, polycarbonate, polyurethane, and amorphous olefin (Cyclo-Olefin-Polymer: COP). Among these resin films, stretched, particularly biaxially stretched, polyester films are preferred from the viewpoints of mechanical strength, dimensional stability, and heat resistance. Examples of polyester films include polyethylene terephthalate films and polyethylene naphthalate films.

[0018] The light-transmitting substrate may be a single layer of a resin film, or may have a plurality of resin films. When the light-transmitting substrate has a plurality of resin films, the resin films may be bonded directly to each other or may be bonded to each other via an adhesive layer.

[0019] The thickness t0 of the light-transmitting substrate is preferably 5 μm or more, more preferably 8 μm or more, and even more preferably 10 μm or more. By making the thickness of the light-transmitting substrate 5 μm or more, it is easier to improve the strength of the barrier film. Furthermore, from the viewpoint of thinning and making it easier to suppress the intrusion of water vapor and oxygen from the edges, the thickness t0 of the light-transmitting substrate is preferably 200 μm or less, more preferably 150 μm or less, more preferably 100 μm or less, more preferably 50 μm or less, and more preferably 25 μm or less.

[0020] In this specification, the thickness of each layer constituting the barrier film, such as the thickness t0 of the light-transmitting substrate, and the thickness of the quantum dot-containing layer can be calculated, for example, by measuring the thickness at 20 points on a cross-sectional image taken using a scanning transmission electron microscope (STEM) and averaging the values ​​at the 20 points.

[0021] In this specification, when measuring various parameters such as the thickness of each layer, total light transmittance, and color (x and y values ​​in the Yxy color system), unless otherwise specified, the measurements are made in an atmosphere at a temperature of 23°C ± 5°C and a relative humidity of 40% to 65%. Furthermore, before measuring the various parameters, the sample is exposed to the atmosphere for 30 minutes or more.

[0022] In addition, when multiple upper limit and lower limit options are shown in the constituent elements shown in this specification, one selected from the upper limit options and one selected from the lower limit options can be combined to form an embodiment of a numerical range. For example, in the case of the thickness t0 of the light-transmitting substrate described above, embodiments of numerical ranges such as 5 μm to 200 μm, 5 μm to 25 μm, 8 μm to 50 μm, 10 μm to 50 μm, and 10 μm to 25 μm can be mentioned.

[0023] When the light-transmitting substrate is composed of two resin films, the thickness of the first resin film closer to the inorganic oxide layer A is preferably 5 μm to 50 μm, more preferably 8 μm to 25 μm, and even more preferably 10 μm to 20 μm. When the first resin film has this thickness, the production efficiency of the inorganic oxide layer can be improved, and handling can be facilitated. The thickness of the second resin film on the side farther from the inorganic oxide layer A is preferably 5 μm or more and 150 μm or less, more preferably 8 μm or more and 100 μm or less, and even more preferably 10 μm or more and 50 μm or less. When the second resin film has this thickness, it is easier to achieve a good balance between the handleability and rigidity of the barrier film. When the light-transmitting substrate is composed of two resin films, the two resin films may be bonded together via an adhesive layer before forming the inorganic oxide layer A, etc., or the inorganic oxide layer A, etc. may be formed on a first resin film, and then a second resin film may be bonded via an adhesive layer to the surface of the first resin film opposite the inorganic oxide layer A, etc. The thickness of the adhesive layer is preferably 3 μm to 100 μm, more preferably 3 μm to 50 μm, and even more preferably 4 μm to 8 μm. If the adhesive layer is too thin, coating defects may occur, and if it is too thick, insufficient curing may occur.

[0024] The light-transmitting substrate preferably has a total light transmittance according to JIS K7361-1:1997 of 80% or more, more preferably 85% or more, and even more preferably 87% or more.

[0025] The surface of the light-transmitting substrate on which the inorganic oxide layer A is to be provided may be subjected to a desired surface treatment in advance in order to improve adhesion, etc. Examples of the surface treatment include corona discharge treatment, ozone treatment, low-temperature plasma treatment using oxygen gas or nitrogen gas, glow discharge treatment, and oxidation treatment using chemicals, etc.

[0026] <Inorganic oxide layer> The barrier film of the present disclosure has inorganic oxide layers, inorganic oxide layer A and inorganic oxide layer C. By having two inorganic oxide layers, the barrier film has good barrier properties against oxygen and water vapor, making it easier to suppress deterioration of quantum dots. Furthermore, if one inorganic oxide layer is used to improve barrier properties, the inorganic oxide layer becomes thick, making it more susceptible to cracking, making it difficult to maintain good barrier properties over the long term. However, by using two inorganic oxide layers, it is possible to prevent the thickness of each inorganic oxide layer from increasing, making cracking less likely, and making it easier to maintain good barrier properties over the long term. Even if the thickness of the inorganic oxide layer is reduced, cracks and pinholes may occur. However, even if cracks and pinholes occur in each of the two inorganic oxide layers, the laminate can still have the desired barrier properties as long as the positions of the cracks and pinholes do not coincide in the plane direction. In other words, using two inorganic oxide layers is preferable because it is easy to impart the desired barrier properties even if cracks and pinholes occur in the inorganic oxide layer.

[0027] Examples of inorganic oxide layer A and inorganic oxide layer C include layers made of one material selected from aluminum oxide, magnesium oxide, indium tin oxide (ITO), and silicon oxide, or a mixture thereof. The compositions of inorganic oxide layer A and inorganic oxide layer C may be the same or different.

[0028] From the viewpoints of transparency and productivity, the inorganic oxide layer A and the inorganic oxide layer C are preferably layers containing aluminum oxide or silicon oxide. Furthermore, from the viewpoints of sufficient barrier properties, transparency, productivity, etc., it is preferable that at least one of the inorganic oxide layer A and the inorganic oxide layer C is a layer containing aluminum oxide, and it is more preferable that both the inorganic oxide layer A and the inorganic oxide layer C are layers containing aluminum oxide. The content of aluminum oxide or silicon oxide in inorganic oxide layer A or inorganic oxide layer C is preferably 80 mass % or more, more preferably 90 mass % or more, and even more preferably 95 mass % or more, on a mass basis.

[0029] Examples of the combination of the inorganic oxide layer A and the inorganic oxide layer C include the following (1) to (4). (1) An embodiment in which both the inorganic oxide layer A and the inorganic oxide layer C are layers containing aluminum oxide (2) An embodiment in which both the inorganic oxide layer A and the inorganic oxide layer C are layers containing silicon oxide (3) An embodiment in which the inorganic oxide layer A is a layer containing aluminum oxide and the inorganic oxide layer C is a layer containing silicon oxide (4) An embodiment in which the inorganic oxide layer A is a layer containing silicon oxide and the inorganic oxide layer C is a layer containing aluminum oxide

[0030] Among the above (1) to (4), (1), (3) and (4) are preferred from the viewpoint of barrier properties, with (1) being more preferred. On the other hand, the barrier film may be laminated with other members, and a certain tension is applied to the barrier film during lamination. A layer containing silicon oxide is more resistant to cracking under the tension than a layer containing aluminum oxide. Therefore, from the viewpoint of resistance to cracking under the tension, (2) to (4) are preferred, and (2) is more preferred. For these reasons, (3) and (4) are preferable from the viewpoint of a balance between barrier properties and crack prevention of the inorganic oxide layer under tension. Furthermore, a layer containing silicon oxide is more likely to develop pinholes during the formation of the inorganic oxide layer than a layer containing aluminum oxide. Comparing (3) and (4), (4) is preferable because even if pinholes develop in the layer containing silicon oxide, the pinholes are filled by the organic coating layer B, making it easier to maintain the barrier properties.

[0031] If the inorganic oxide layer is too thin, the barrier properties tend to decrease, and if it is too thick, scratches and cracks tend to occur easily. A , and the thickness t of the inorganic oxide layer C C is preferably set in an appropriate range depending on the material of the inorganic oxide layer so as to obtain a good balance between barrier properties, scratch prevention, and crack prevention.

[0032] For example, when the inorganic oxide layer A and the inorganic oxide layer C are layers containing aluminum oxide, t A and t C The lower limit of each of t is preferably 6 nm or more, and more preferably 7 nm or more. A and t C By making the thickness 6 nm or more, it is possible to easily improve the barrier properties. Also, t A and t C The upper limit of each of t is preferably 25 nm or less, more preferably 20 nm or less, more preferably 15 nm or less, more preferably 12 nm or less, and more preferably 10 nm or less. A and t C By making the thickness 25 nm or less, it is possible to easily prevent scratches and cracks from occurring in the inorganic oxide layer A and the inorganic oxide layer C.

[0033] In addition, when the inorganic oxide layer A and the inorganic oxide layer C are layers containing at least one of silicon oxide, magnesium oxide, and indium tin oxide (ITO), t A and t C The lower limit of each of t is preferably 20 nm or more, more preferably 25 nm or more, and even more preferably 27 nm or more. A and t C By making the thickness 20 nm or more, it is possible to easily improve the barrier properties. Also, t A and t CThe upper limit of each of t is preferably 100 nm or less, more preferably 75 nm or less, even more preferably 60 nm or less, and even more preferably 50 nm or less. A and t C By making the thickness 100 nm or less, it is possible to easily prevent scratches and cracks from occurring in the inorganic oxide layer A and the inorganic oxide layer C.

[0034] The inorganic oxide layer can be formed by, for example, physical vapor deposition methods such as vacuum deposition, sputtering, and ion plating, or chemical vapor deposition methods such as plasma chemical vapor deposition, thermal chemical vapor deposition, and photochemical vapor deposition. Among these, vacuum deposition is preferred because of its high deposition rate and good productivity.

[0035] <Organic coating layer> The barrier film of the present disclosure has an organic coating layer B as an organic coating layer. By having an organic coating layer in combination with an inorganic oxide layer, the barrier properties of the barrier film can be improved, making it easier to suppress deterioration of the quantum dots. Furthermore, since the organic coating layer has better flexibility than the inorganic oxide layer, the organic coating layer B can make it easier to suppress the occurrence of scratches and cracks in the inorganic oxide layer A and the inorganic oxide layer C. It is preferable that the organic coating layer B be in contact with the inorganic oxide layer A and the inorganic oxide layer C in the thickness direction of the barrier film.

[0036] Thickness t of organic coating layer B B The thickness must be between 150 nm and 500 nm. B is preferably 175 nm or more and 450 nm or less, and more preferably 200 nm or more and 400 nm or less. t B If the thickness is less than 150 nm, the barrier film will have insufficient barrier properties, and the quantum dots in the quantum dot-containing layer will deteriorate, causing a change in color over time. Also, t B If the thickness exceeds 500 nm, problems with barrier properties are unlikely to occur, but changes in color cannot be suppressed. BAs the value of σ increases, the amount of change in thickness due to swelling of the organic coating layer B in a high-humidity environment increases. This significantly changes the effect of thin film interference, shifting the waveform of the spectral transmittance of the barrier film, which is thought to make it impossible to suppress changes in color. To explain this in more detail, the spectral transmittance of the barrier film varies in value for each wavelength and increases and decreases in a predetermined cycle. Therefore, when the organic coating layer B swells and the waveform of the spectral transmittance of the barrier film shifts to the longer or shorter wavelength side, the spectral transmittance of a specific wavelength (for example, a wavelength of 450 nm) changes, resulting in a change in color. Also, t B If the thickness is too thick, the stress generated when the organic coating layer is applied and dried becomes large, and the stress may cause cracks in the inorganic oxide layer, resulting in a decrease in barrier properties. B By making the thickness 500 nm or less, it is possible to easily improve the initial barrier properties.

[0037] The organic coating layer B preferably contains one or more selected from a water-soluble polymer and a metal alkoxide compound. Of the water-soluble polymers and metal alkoxide compounds, the organic coating layer B more preferably contains one or more selected from water-soluble polymers, and even more preferably contains one or more selected from water-soluble polymers and one or more selected from metal alkoxide compounds.

[0038] Examples of water-soluble polymers include polyvinyl alcohol, polyvinylpyrrolidone, and ethylene-vinyl alcohol copolymers. Among these, polyvinyl alcohol and ethylene-vinyl alcohol copolymers are preferred from the viewpoint of barrier properties, and polyvinyl alcohol is more preferred. That is, the organic coating layer B preferably contains one or more selected from polyvinyl alcohol and ethylene-vinyl alcohol copolymers, and more preferably contains polyvinyl alcohol.

[0039] When the organic coating layer B contains a water-soluble polymer and a metal alkoxide-based compound, the content of the water-soluble polymer relative to 100 parts by mass of the total amount of the metal alkoxide-based compound is preferably 5 parts by mass or more and 500 parts by mass or less, more preferably 7 parts by mass or more and 100 parts by mass or less, and even more preferably 8 parts by mass or more and 50 parts by mass or less.

[0040] Examples of the metal alkoxide-based compound include metal alkoxides, metal alkoxide hydrolysates, and metal alkoxide polymers. Metal alkoxides are M(OR) n It is a compound represented by the general formula: In the formula, M represents a metal such as Si, Ti, Al, or Zr, and R represents an alkyl group such as a methyl group or an ethyl group. Specific examples of metal alkoxides include tetramethoxysilane, tetraethoxysilane, and isopropoxyaluminum.

[0041] The organic coating layer B can be formed, for example, by applying a coating liquid containing components constituting the organic coating layer B onto the inorganic oxide layer and drying the coating liquid. The coating liquid may contain additives such as a silane coupling agent, a curing agent, and a dispersant.

[0042] <Primer layer> The barrier film of the present disclosure is required to have a primer layer D on the inorganic oxide layer C opposite to the organic coating layer B. The presence of the primer layer improves adhesion between the barrier film and the quantum dot-containing layer, making it easier to maintain the barrier properties of the barrier film over a long period of time and suppressing changes in color over time. It is also expected that the primer layer D will make it easier to suppress scratches and cracks from occurring in the inorganic oxide layer C.

[0043] The primer layer is preferably disposed in a position in contact with the inorganic oxide layer C. The primer layer is also preferably disposed as the outermost layer of the barrier film.

[0044] The barrier film of the present disclosure has a thickness tD and the thickness t of the organic coating layer B B The ratio of t D / t B must be between 0.55 and 1.65. D / t B is preferably 0.60 or more and 1.50 or less, and more preferably 0.70 or more and 1.30 or less. t D / t B If t is less than 0.55, when stress is generated due to expansion or contraction of the barrier film, an excessive load is applied to the thin primer layer D, and the interface of the primer layer D is likely to peel off. D / t B If the value exceeds 1.65, when stress is generated due to expansion or contraction of the barrier film, an excessive load is applied to the thin organic coating layer B, and the interface of the organic coating layer B becomes prone to peeling. That is, t D / t B By making the ratio between 0.55 and 1.65, it is possible to prevent excessive load from being applied to either the organic coating layer B or the primer layer D when stress is generated, which makes it easier to maintain the barrier properties of the barrier film over a long period of time and makes it easier to prevent changes in color over time.

[0045] Thickness t of primer layer D D is t D / t B is not particularly limited as long as it is 0.55 or more and 1.65 or less. t D is usually 82.5 nm or more and 825 nm or less, preferably 100 nm or more and 600 nm or less, and more preferably 125 nm or more and 400 nm or less.

[0046] "composition" The primer layer D preferably contains a resin component such as a polyurethane-based resin composition. The polyurethane-based resin easily improves adhesion to the quantum dot-containing layer and also relieves stress generated when the quantum dot-containing layer is cured with ionizing radiation or thermally cured, thereby preventing the stress from being transmitted to the inorganic oxide layer and the organic coating layer. Furthermore, the polyurethane-based resin improves the elongation of the primer layer D, thereby making it easier to prevent cracks from occurring in the layers that make up the barrier film, such as the inorganic oxide layer.

[0047] The polyurethane resin composition may be a one- or two-component polyurethane resin composition obtained by reacting a polyfunctional isocyanate with a hydroxyl group-containing compound. Either one kind of the polyfunctional isocyanate or one kind of the hydroxyl group-containing compound may be used, or multiple kinds of the polyfunctional isocyanate and the hydroxyl group-containing compound may be used. Specific examples of polyfunctional isocyanates include aromatic polyisocyanates such as tolylene diisocyanate, diphenylmethane diisocyanate, xylylene diisocyanate, and polymethylene polyphenylene polyisocyanate, and aliphatic polyisocyanates such as hexamethylene diisocyanate and isophorone diisocyanate. Examples of the hydroxyl group-containing compound include polyether polyol, polyester polyol, polyester polyurethane polyol, and polyacrylate polyol. In the present disclosure, polyester polyurethane polyol is particularly preferred from the viewpoints of adhesion to the quantum dot-containing layer and durability. Polyester polyurethane polyol can be produced by the methods described in, for example, JP 2001-288408 A and JP 2003-26996 A.

[0048] The content of the polyurethane resin composition is preferably 40% by mass or more, and more preferably 70% by mass or more, based on the total amount of the primer layer D.

[0049] The primer layer D may further contain a silane coupling agent. The inclusion of a silane coupling agent can facilitate improved adhesion between the primer layer D and the inorganic oxide layer C. The functional group at one end of the silane coupling agent molecule, typically a chloro, alkoxy, or acetoxy group, hydrolyzes to form a silanol group (Si-OH). This modifies the resin composition of the primer layer D via a covalent bond or the like, forming a strong bond. Furthermore, the organic functional group at the other end of the silane coupling agent, such as vinyl, methacryloxy, amino, epoxy, or mercapto, can facilitate improved adhesion between the primer layer D and the inorganic oxide layer C, and between the primer layer D and the quantum dot-containing layer.

[0050] Examples of silane coupling agents include γ-chloropropyltrimethoxysilane, vinyltrichlorosilane, vinyltriethoxysilane, vinyl-tris(β-methoxyethoxy)silane, γ-methacryloxypropyltrimethoxysilane, β-(3,4-epoxycyclohexyl)ethyltrimethoxysilane, γ-glycidoxypropyltrimethoxysilane, vinyltriacetoxysilane, γ-mercaptopropyltrimethoxysilane, N-β(aminoethyl)-γ-aminopropyltrimethoxysilane, N-β(aminoethyl)-γ-aminopropylmethyldimethoxysilane, γ-ureidopropyltriethoxysilane, bis(β-hydroxyethyl)-γ-aminopropyltriethoxysilane, and γ-aminopropylsilicone, and one or more of these can be used.

[0051] The content of the silane coupling agent is preferably 1% by mass or more, and more preferably 3% by mass or more, based on the total amount of the primer layer D. When the content of the silane coupling agent is within the above range, it is possible to further improve the adhesion between the primer layer D and the inorganic oxide layer C, and between the primer layer D and the quantum dot-containing layer. In addition, in order to improve the extensibility of the primer layer D and to suppress the occurrence of cracks in the primer layer D, the content of the silane coupling agent is preferably 30 mass% or less, and more preferably 20 mass% or less, based on the total amount of the primer layer D.

[0052] The primer layer D may further contain a filler. The filler adjusts the viscosity of the coating liquid for forming the primer layer and improves coating suitability. Examples of fillers that can be used include calcium carbonate, barium sulfate, alumina white, silica, talc, glass frit, and resin powder.

[0053] The primer layer may further contain additives such as stabilizers, crosslinking agents, lubricants, ultraviolet absorbers, and the like, as required.

[0054] The total thickness of the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C, and the primer layer D is preferably 300 nm to 1200 nm, more preferably 400 nm to 900 nm, even more preferably 500 nm to 800 nm, and even more preferably 550 nm to 750 nm. By setting the total thickness to 300 nm or more, it is possible to easily improve the barrier properties. Furthermore, by setting the total thickness to 1200 nm or less, it is possible to prevent the period of the spectral transmittance waveform from becoming too short, and to easily prevent a large change in the spectral transmittance at a specific wavelength (e.g., a wavelength of 450 nm) when the organic coating layer swells and the spectral transmittance waveform of the barrier film shifts to the longer or shorter wavelength side.

[0055] <Physical properties> <Water vapor permeability> The barrier film has a water vapor permeability of 0.20 g / m according to JIS K7129-2:2019. 2 ·day or less, and 0.15 g / m 2It is more preferable that the water vapor permeability is measured at a temperature and humidity of 40°C and a relative humidity of 90%. Before measuring the water vapor permeability, the sample to be measured is exposed to an atmosphere at a temperature of 23°C ± 5°C and a relative humidity of 40% to 65% for 30 minutes or more. The water vapor permeability can be measured, for example, using a water vapor permeability measuring device manufactured by MOCON (trade name: PERMATRAN).

[0056] Oxygen permeability The barrier film has an oxygen permeability of 0.5cc / m according to JIS K7126-2:2006. 2 ·day·atm or less. The temperature and humidity conditions for measuring oxygen permeability are 23°C and 90% relative humidity. Before measuring oxygen permeability, the sample to be measured is exposed to an atmosphere at a temperature of 23°C±5°C and a relative humidity of 40% to 65% for at least 30 minutes. The oxygen permeability can be measured, for example, by an oxygen permeability measuring device (trade name: OX-TRAN) manufactured by MOCON (MOCON method).

[0057] "b* value" Barrier film is L * a * b * Color space b * The value is preferably -1.3 or more and 1.0 or less, more preferably -1.5 or more and 0.8 or less, and even more preferably -1.0 or more and 0.5 or less. * The value is transparent b * Also, b * The light incident surface when measuring the value is the surface opposite to the light-transmitting substrate. L * a * b * The color system is the L color system standardized by the International Commission on Illumination (CIE) in 1976. * a * b * It is based on the color system and is adopted in JIS Z8781-4:2013.

[0058] 《Total light transmittance》 The barrier film preferably has a total light transmittance of 80% or more, more preferably 85% or more, and even more preferably 87% or more according to JIS K7361-1:1997. The light incident surface when measuring the total light transmittance is the surface opposite to the light-transmitting substrate.

[0059] <Layer structure> An example of the laminated structure of the barrier film of the present disclosure is the following (1). In the following (1), " / " indicates the interface between the layers. (1) Light-transparent base material / Inorganic oxide layer A / Organic coating layer B / Inorganic oxide layer C / Primer layer D

[0060] The barrier film may have layers other than those described above, as long as the effects of the present disclosure are not impaired. The barrier film of the present disclosure may also have the following laminate structure (2). However, the laminate structure (2) has a larger number of interfaces than the laminate structure (1) above, which is disadvantageous in terms of optical properties and also increases the total thickness. For this reason, the laminate structure (1) above is preferred. (2) First light-transmitting substrate / inorganic oxide layer A / organic coating layer B / inorganic oxide layer C / second light-transmitting substrate / primer layer D

[0061] <Manufacturing method> The barrier film can be produced, for example, by forming an inorganic oxide layer A, an organic coating layer B, an inorganic oxide layer C, and a primer layer D in this order on a light-transmitting substrate. As described above, the inorganic oxide layer A and the inorganic oxide layer C can be formed by physical vapor deposition such as vacuum deposition, or chemical vapor deposition such as plasma enhanced chemical vapor deposition. The organic coating layer B and the primer layer D can be formed by applying a coating liquid in which the compositions constituting each layer are dissolved or dispersed, drying the coating liquid, and curing it as necessary.

[0062] <Application> The barrier film for a wavelength conversion sheet of the present disclosure can be used, for example, as a barrier film for a wavelength conversion sheet of a surface light source. Examples of surface light sources include a backlight source for a liquid crystal display device and a backlight source for an inspection device. That is, the barrier film for a wavelength conversion sheet of the present disclosure can be used as a "barrier film for a wavelength conversion sheet of a backlight source for a liquid crystal display device," a "barrier film for a wavelength conversion sheet of a backlight source for an inspection device," etc. Furthermore, the barrier film for wavelength conversion sheets of the present disclosure can also be used as a "barrier film for horticultural wavelength conversion sheets." Examples of horticultural wavelength conversion sheets include sheets that have the function of converting ultraviolet light into wavelengths suitable for plant growth. Examples of wavelengths suitable for plant growth include wavelengths suitable for photosynthesis. Horticultural wavelength conversion sheets can be installed on the ceilings of horticultural facilities such as greenhouses and glasshouses.

[0063] [Wavelength conversion sheet] The wavelength conversion sheet of the present disclosure has a quantum dot-containing layer containing quantum dots and barrier films laminated on both sides of the quantum dot-containing layer, and the barrier films are laminated so that the surfaces of the barrier films of the present disclosure opposite to the light-transmitting substrate face the quantum dot-containing layer.

[0064] Fig. 2 is a cross-sectional view showing an embodiment of a wavelength conversion sheet (200) of the present disclosure. The wavelength conversion sheet (200) of Fig. 2 has a quantum dot-containing layer (50) containing quantum dots and barrier films (100a, 100b) laminated on both sides of the quantum dot-containing layer. The wavelength conversion sheet (200) of Fig. 2 is laminated so that the surfaces of the barrier films (100a, 100b) opposite to the light-transmitting substrate (10) face the quantum dot-containing layer (50).

[0065] The wavelength conversion sheet preferably has a vertically symmetrical configuration with respect to the quantum dot-containing layer as the center, as shown in Fig. 2. In other words, the barrier films laminated on both sides of the quantum dot-containing layer preferably have the same configuration. By having the above-mentioned configuration, strain is evenly distributed, which makes it easier to improve the flatness of the wavelength conversion sheet and also makes it easier to improve the adhesion of each interface of the wavelength conversion sheet.

[0066] <Quantum dot-containing layer> The quantum dot-containing layer includes quantum dots and a binder resin.

[0067] Quantum dots are nanometer-sized particles of semiconductors that exhibit unique optical and electrical properties due to the quantum confinement effect (quantum size effect), in which electrons and excitons are confined within tiny nanometer-sized crystals.They are also called semiconductor nanoparticles or semiconductor nanocrystals. Quantum dots are nanometer-sized semiconductor particles that can be made of any material that exhibits a quantum confinement effect (quantum size effect). Examples of quantum dots include semiconductor particles whose emission color is controlled by their particle size and semiconductor particles containing dopants.

[0068] Quantum dots emit different colors of light depending on their particle size. For example, in the case of quantum dots consisting only of a CdSe core, the peak wavelengths of the fluorescence spectrum are 528 nm, 570 nm, 592 nm, and 637 nm when the particle sizes are 2.3 nm, 3.0 nm, 3.8 nm, and 4.6 nm. In other words, the particle size of quantum dots that emit secondary light with a peak wavelength of 637 nm is 4.6 nm, and the particle size of quantum dots that emit secondary light with a peak wavelength of 528 nm is 2.3 nm. The quantum dots preferably include one or more types selected from quantum dots that emit secondary light having a wavelength corresponding to red and quantum dots that emit secondary light having a wavelength corresponding to green, and more preferably include quantum dots that emit secondary light having a wavelength corresponding to red and quantum dots that emit secondary light having a wavelength corresponding to green. The quantum dots may include quantum dots other than those that emit secondary light having a wavelength corresponding to red and those that emit secondary light having a wavelength corresponding to green.

[0069] The content of the quantum dots is adjusted appropriately depending on the thickness of the quantum dot-containing layer, the light recycling rate in the backlight, the desired color, etc. If the thickness of the quantum dot-containing layer is within the range described below, the content of the quantum dots is approximately 0.01 part by mass or more and 1.0 part by mass or less per 100 parts by mass of the binder resin of the quantum dot-containing layer.

[0070] Specific examples of the core material of quantum dots include II-VI group semiconductor compounds such as MgS, MgSe, MgTe, CaS, CaSe, CaTe, SrS, SrSe, SrTe, BaS, BaSe, BaTe, ZnS, ZnSe, ZnTe, CdS, CdSe, CdTe, HgS, HgSe, and HgTe, III-V group semiconductor compounds such as AlN, AlP, AlAs, AlSb, GaAs, GaP, GaN, GaSb, InN, InAs, InP, InSb, TiN, TiP, TiAs, and TiSb, and IV group semiconductors such as Si, Ge, and Pb. Semiconductor crystals containing semiconductor compounds containing three or more elements, such as InGaP, can also be used. Furthermore, quantum dots made of semiconductor particles having a dopant include the above semiconductor compounds containing Eu 3+ , Tb 3+ , Ag + , Cu + It is also possible to use a semiconductor crystal doped with a rare earth metal cation or a transition metal cation such as the following. As the core material of quantum dots, semiconductor crystals such as CdS, CdSe, CdTe, InP, and InGaP are suitable from the viewpoints of ease of preparation, controllability of particle size to obtain visible light emission, and fluorescence quantum yield.

[0071] The quantum dots may be composed of one type of semiconductor compound or two or more types of semiconductor compounds, and may have, for example, a core-shell structure having a core composed of a semiconductor compound and a shell composed of a semiconductor compound different from the core. When using core-shell quantum dots, the semiconductor that makes up the shell can be made of a material with a higher band gap than the semiconductor compound that makes up the core, so that excitons are confined in the core, thereby increasing the luminous efficiency of the quantum dots. Examples of core-shell structures (core / shell) having such a band gap relationship include CdSe / ZnS, CdSe / ZnSe, CdSe / CdS, CdTe / CdS, InP / ZnS, GaP / ZnS, Si / ZnS, InN / GaN, InP / CdSSe, InP / ZnSeTe, InGaP / ZnSe, InGaP / ZnS, Si / AlP, InP / ZnSTe, InGaP / ZnSTe, and InGaP / ZnSSe.

[0072] The size of quantum dots can be controlled by the material that makes up the quantum dots to obtain the desired wavelength of light. As the particle size of quantum dots decreases, the energy band gap increases. In other words, as the crystal size decreases, the emission of quantum dots shifts toward the blue side, i.e., toward higher energy. Therefore, by changing the size of quantum dots, the emission wavelength can be adjusted across the entire wavelength range of the ultraviolet, visible, and infrared spectrum. In general, the particle size (diameter) of the quantum dots is preferably in the range of 0.5 nm to 20 nm, and more preferably in the range of 1 nm to 10 nm. The narrower the size distribution of the quantum dots, the more vivid the emitted light color can be. The shape of the quantum dots is not particularly limited and may be, for example, spherical, rod-like, disc-like, or other shapes. When the quantum dots are not spherical, the particle size of the quantum dots can be the same as that of a perfect sphere having the same volume. The quantum dots may be coated with a resin.

[0073] Examples of the binder resin for the quantum dot-containing layer include thermoplastic resins, cured products of thermosetting resin compositions, and cured products of ionizing radiation curable resin compositions. Among these, from the viewpoint of durability, cured products of thermosetting resin compositions and cured products of ionizing radiation curable resin compositions are preferred, and cured products of ionizing radiation curable resin compositions are more preferred.

[0074] The thermosetting resin composition is a composition containing at least a thermosetting resin and is a resin composition that is cured by heating. The thermosetting resin composition preferably contains a thiol compound described below in addition to the thermosetting resin, and more preferably contains a polyfunctional thiol compound. Examples of thermosetting resins include acrylic resins, urethane resins, phenolic resins, urea melamine resins, epoxy resins, unsaturated polyester resins, silicone resins, etc. In the thermosetting resin composition, a curing agent is added to the curable resin as needed.

[0075] The ionizing radiation-curable resin composition is a composition containing a compound having an ionizing radiation-curable functional group (hereinafter also referred to as "ionizing radiation-curable compound"). In addition to the ionizing radiation-curable compound, the ionizing radiation-curable resin composition preferably contains a thiol compound described below, and more preferably contains a polyfunctional thiol compound.

[0076] Examples of ionizing radiation-curable functional groups include ethylenically unsaturated bond groups such as (meth)acryloyl groups, vinyl groups, and allyl groups, as well as epoxy groups and oxetanyl groups, among which ethylenically unsaturated bond groups are preferred. Furthermore, among ethylenically unsaturated bond groups, (meth)acrylate groups are preferred. Hereinafter, ionizing radiation-curable compounds having (meth)acryloyl groups will be referred to as (meth)acrylate-based compounds. In other words, the binder resin preferably contains a cured product of a composition containing a (meth)acrylate-based compound. In this specification, "(meth)acrylate" refers to methacrylate and acrylate. In addition, in this specification, "ionizing radiation" refers to electromagnetic waves or charged particle beams that have an energy quantum capable of polymerizing or crosslinking molecules, and although ultraviolet rays or electron beams are usually used, other types of radiation such as electromagnetic waves (e.g., X-rays and gamma rays), alpha rays, and charged particle beams (e.g., ion beams) can also be used.

[0077] The ionizing radiation-curable compound may be a monofunctional ionizing radiation-curable compound having only one of the above functional groups, or a polyfunctional ionizing radiation-curable compound having two or more of the above functional groups, or a mixture thereof. Among these, polyfunctional ionizing radiation-curable compounds are preferred, and polyfunctional (meth)acrylate compounds having two or more (meth)acryloyl groups are more preferred. That is, the binder resin preferably contains a cured product of a polyfunctional ionizing radiation-curable compound, more preferably a cured product of a polyfunctional (meth)acrylate compound. Furthermore, the binder resin preferably contains a cured product of a composition containing a polyfunctional ionizing radiation-curable compound and a thiol compound, more preferably a cured product of a composition containing a polyfunctional (meth)acrylate compound and a thiol compound.

[0078] The polyfunctional (meth)acrylate compound may have an alkyleneoxy group. The alkyleneoxy group is preferably, for example, an alkyleneoxy group having 2 or more and 4 or less carbon atoms, more preferably an alkyleneoxy group having 2 or 3 carbon atoms, and even more preferably an alkyleneoxy group having 2 carbon atoms.

[0079] The polyfunctional (meth)acrylate compound having an alkyleneoxy group may be a polyfunctional (meth)acrylate compound having a polyalkyleneoxy group containing a plurality of alkyleneoxy groups. When the polyfunctional (meth)acrylate compound has alkyleneoxy groups, the number of alkyleneoxy groups in one molecule is preferably 2 to 30, more preferably 2 to 20, even more preferably 3 to 10, and even more preferably 3 to 5.

[0080] When the polyfunctional (meth)acrylate compound has an alkyleneoxy group, it preferably has a bisphenol structure. This tends to improve the heat resistance of the cured product. Examples of the bisphenol structure include a bisphenol A structure and a bisphenol F structure, and among them, a bisphenol A structure is preferred. Among the polyfunctional (meth)acrylate compounds having an alkyleneoxy group, ethoxylated bisphenol A di(meth)acrylate, propoxylated bisphenol A di(meth)acrylate, and propoxylated ethoxylated bisphenol A di(meth)acrylate are preferred, with ethoxylated bisphenol A di(meth)acrylate being more preferred.

[0081] The ionizing radiation curable compound may be a monomer, an oligomer, a low molecular weight polymer, or a mixture thereof.

[0082] As described above, the heat-curable resin composition and the ionizing radiation-curable resin composition preferably contain a thiol compound. A thiol compound is a compound having one or more units represented by R-SH (R is an organic group). In this specification, a compound having one unit represented by R-SH is referred to as a monofunctional thiol compound, and a compound having two or more units represented by R-SH is referred to as a polyfunctional thiol compound.

[0083] The thiol compound may be a monofunctional thiol compound, but from the viewpoint of improving the strength of the quantum dot-containing layer, a polyfunctional thiol compound is preferred. Furthermore, among polyfunctional thiol compounds, a trifunctional thiol compound or a tetrafunctional thiol compound is more preferred.

[0084] In the presence of a radical polymerization initiator, a thiol compound undergoes a thiol-ene reaction with a compound having a radically polymerizable functional group according to the following formula: The thiol-ene reaction can suppress polymerization shrinkage, thereby alleviating stress generated during curing of the quantum dot-containing layer, and as a result, is preferable in that it is easy to improve the interlayer adhesion of the wavelength conversion sheet. Furthermore, the cured product obtained by the thiol-ene reaction is also preferable in that it is easy to improve heat resistance. Furthermore, the refractive index of the thiol compound (approximately 1.53) is higher than that of the polyfunctional (meth)acrylate compound (approximately 1.45), which increases the degree of freedom in adjusting the refractive index of the quantum dot-containing layer. The following reaction is an example of a reaction between a monofunctional thiol compound and a compound having one radically polymerizable functional group. It is believed that a reaction product between a polyfunctional thiol compound and a compound having two or more radically polymerizable functional groups is likely to form a dendrimer structure. Furthermore, when a dendrimer structure is formed, it is believed that the flexibility of the quantum dot-containing layer increases, and the quantum dot-containing layer itself is likely to exhibit excellent stress relaxation properties. Examples of radically polymerizable functional groups include ethylenically unsaturated bond-containing groups such as (meth)acryloyl groups, vinyl groups, and allyl groups.

[0085] [ka] [In the formula, R 1 and R 2 is an organic group.

[0086] Specific examples of monofunctional thiol compounds include hexanethiol, 1-heptanethiol, 1-octanethiol, 1-nonanethiol, 1-decanethiol, 3-mercaptopropionic acid, methyl mercaptopropionate, methoxybutyl mercaptopropionate, octyl mercaptopropionate, tridecyl mercaptopropionate, 2-ethylhexyl-3-mercaptopropionate, and n-octyl-3-mercaptopropionate.

[0087] Specific examples of polyfunctional thiol compounds include ethylene glycol bis(3-mercaptopropionate), diethylene glycol bis(3-mercaptopropionate), tetraethylene glycol bis(3-mercaptopropionate), 1,2-propylene glycol bis(3-mercaptopropionate), diethylene glycol bis(3-mercaptobutyrate), 1,4-butanediol bis(3-mercaptopropionate), 1,4-butanediol bis(3-mercaptopropionate), captobutyrate), 1,8-octanediol bis(3-mercaptopropionate), 1,8-octanediol bis(3-mercaptobutyrate), hexanediol bisthioglycolate, trimethylolpropane tris(3-mercaptopropionate), trimethylolpropane tris(3-mercaptobutyrate), trimethylolpropane tris(3-mercaptoisobutyrate), trimethylolpropane tris(2-mercaptoisobutyrate), trimethylolpropane Trimethylolpropane tristhioglycolate, tris-[(3-mercaptopropionyloxy)-ethyl]-isocyanurate, trimethylolethane tris(3-mercaptobutyrate), pentaerythritol tetrakis(3-mercaptopropionate), pentaerythritol tetrakis(3-mercaptobutyrate), pentaerythritol tetrakis(3-mercaptoisobutyrate), pentaerythritol tetrakis(2-mercaptoisobutyrate), dipentaerythritol Examples of the esters include erythritol hexakis(3-mercaptopropionate), dipentaerythritol hexakis(2-mercaptopropionate), dipentaerythritol hexakis(3-mercaptobutyrate), dipentaerythritol hexakis(3-mercaptoisobutyrate), dipentaerythritol hexakis(2-mercaptoisobutyrate), pentaerythritol tetrakisthioglycolate, and dipentaerythritol hexakisthioglycolate.

[0088] In the ionizing radiation curable resin composition (or thermosetting resin composition), the mass ratio of the ionizing radiation curable compound (or thermosetting resin) to the thiol compound is preferably 80:20 to 35:65, and more preferably 70:30 to 40:60.

[0089] When the ionizing radiation curable compound is an ultraviolet ray curable compound, the ionizing radiation curable composition preferably contains additives such as a photopolymerization initiator and a photopolymerization accelerator.

[0090] The quantum dot-containing layer may contain internal diffusing particles. The internal diffusion particles may be either organic or inorganic. Examples of organic particles include particles made of polymethyl methacrylate, acrylic-styrene copolymer, melamine resin, polycarbonate, polystyrene, polyvinyl chloride, benzoguanamine-melamine-formaldehyde condensate, silicone resin, fluorine-based resin, and polyester. Examples of inorganic fine particles include fine particles made of silica, alumina, zirconia, and titania. The shape of the internal diffusion particles may be spherical, disc-shaped, rugby ball-shaped, irregular, etc. The internal diffusion particles may be hollow particles, porous particles, or solid particles.

[0091] The content of the internal diffusion particles is preferably 1 part by mass or more and 40 parts by mass or less, and more preferably 3 parts by mass or more and 30 parts by mass or less, relative to 100 parts by mass of the binder resin.

[0092] The average particle size of the internal diffusion particles is preferably 1 μm or more and 7 μm or less, and more preferably 1 μm or more and 3 μm or less.

[0093] The thickness of the quantum dot-containing layer is preferably 10 μm or more and 200 μm or less, more preferably 20 μm or more and 150 μm or less, and even more preferably 30 μm or more and 130 μm or less.

[0094] Refractive index n of the quantum dot-containing layer Z is preferably 1.40 or more and 1.55 or less, more preferably 1.43 or more and 1.52 or less, and even more preferably 1.46 or more and 1.50 or less. Refractive index n of the quantum dot-containing layer Z is largely governed by the refractive index of the binder resin. This is because the quantum dot-containing layer contains a small amount of quantum dots, and even if an internal diffusing agent is included, the particle diameter of the internal diffusing agent is larger than the wavelength of light, so it does not affect the refractive index of the layer.

[0095] [Backlight] The backlight of the present disclosure includes at least one light source that emits primary light, an optical plate that is disposed adjacent to the light source and that guides or diffuses light, and a wavelength conversion sheet that is disposed on the light-emitting side of the optical plate, wherein the wavelength conversion sheet is the wavelength conversion sheet of the present disclosure described above.

[0096] Examples of the backlight 300 of the present disclosure include an edge-light type backlight 301 as shown in FIG. 3, or a direct type backlight 302 as shown in FIG.

[0097] 3 is an optical member for guiding primary light emitted by light source 210, and is a so-called light guide plate 221. Light guide plate 221 has a substantially flat plate shape shaped so that at least one surface serves as a light incident surface and another surface substantially perpendicular to the light incident surface serves as a light emitting surface.

[0098] The light guide plate is mainly made of a matrix resin selected from highly transparent resins such as polymethyl methacrylate. If necessary, resin particles having a refractive index different from that of the matrix resin may be added to the light guide plate. Each surface of the light guide plate may have a complex surface shape rather than a uniform flat surface, and may be provided with a dot pattern or the like.

[0099] 4 is an optical member (light diffusion plate 222) having light diffusibility to make the pattern of the light source 210 less visible. The light diffusion plate 222 may be, for example, a milky white resin plate having a thickness of approximately 1 mm to 3 mm.

[0100] In addition to the light source, optical plate, and barrier film described above, edge-lit and direct-type backlights may also be equipped with one or more components selected from a reflector, a light-diffusing film, a prism sheet, a brightness enhancement film (BEF), a reflective polarizing film (DBEF), and the like, depending on the purpose. The reflector is disposed on the side opposite to the light-emitting surface of the optical plate. The light-diffusing film, prism sheet, brightness-enhancing film, and reflective polarizing film are disposed on the light-emitting surface of the optical plate. By using one or more members selected from the reflector, light-diffusing film, prism sheet, brightness-enhancing film, and reflective polarizing film, a backlight with an excellent balance of front brightness, viewing angle, etc. can be obtained.

[0101] In edge-lit and direct-type backlights, the light source 210 is a light emitter that emits primary light, and preferably uses a light emitter that emits primary light with a wavelength corresponding to blue. The primary light with a wavelength corresponding to blue preferably has a peak wavelength in the range of 380 nm to 480 nm. The peak wavelength is more preferably 450 nm ± 7 nm, more preferably 450 nm ± 5 nm, even more preferably 450 nm ± 3 nm, and even more preferably 450 nm ± 1 nm. The light source 210 is preferably an LED light source, more preferably a blue monochromatic LED light source, from the viewpoint of simplifying and miniaturizing the device in which the backlight is installed. The number of light sources 210 is at least one, and preferably a plurality of light sources from the viewpoint of emitting sufficient primary light.

[0102] In the backlight including the wavelength conversion sheet, in the Yxy color system of the International Commission on Illumination (CIE), the difference in the x value (Δx) and the difference in the y value (Δy) before and after the following high temperature and high humidity test are preferably both 0.015 or less, more preferably both 0.010 or less. By setting Δx and Δy to 0.020 or less, it is possible to suppress changes in color tone. High temperature and humidity test: Exposed to an atmosphere of 60°C and 90% relative humidity for 1000 hours The x and y values ​​after the high temperature and high humidity test shall be measured immediately after the measurement sample is removed from the high temperature and high humidity test environment in an atmosphere at a temperature of 23°C ± 5°C and a relative humidity of 40% to 65%.

[0103] [Liquid crystal display device] The liquid crystal display device of the present disclosure is a liquid crystal display device including a backlight and a liquid crystal panel, and the backlight is the backlight of the present disclosure described above.

[0104] The liquid crystal panel is not particularly limited, and any general-purpose liquid crystal panel for a liquid crystal display device can be used, for example, a liquid crystal panel having a general structure in which a liquid crystal layer is sandwiched between glass plates, specifically, a liquid crystal panel of a display type such as TN, STN, VA, IPS, or OCB.

[0105] The liquid crystal display device further includes a polarizing plate, a color filter, etc. General-purpose polarizing plates and color filters can be used.

[0106] LCDs display color images by transmitting white light from a backlight through color filters. By using color filters that match the spectrum of the quantum dot backlight, LCDs can achieve displays that are bright, efficient, and produce extremely vivid colors. [Example]

[0107] Next, the present disclosure will be described in more detail with reference to examples, but the present disclosure is not limited to these examples. Note that "parts" and "%" are based on mass unless otherwise specified.

[0108] 1. Measurement and Evaluation The barrier films or wavelength conversion sheets of the Examples and Comparative Examples were measured and evaluated as follows. The results are shown in Tables 1 and 2.

[0109] 1-1.Water vapor permeability The water vapor permeability values ​​of the barrier films of the Examples and Comparative Examples were measured according to JIS K7129-2:2019. The measuring device used was a product name "PERMATRAN" manufactured by MOCON. The temperature and humidity conditions for measuring the water vapor permeability were 40°C and 90% relative humidity. Furthermore, before measuring the water vapor permeability, the measurement sample was exposed to an atmosphere with a temperature of 23°C ± 5°C and a relative humidity of 40% to 65% for 30 minutes or more. The water vapor permeability measured in this way means the water vapor permeability at an initial stage. When the water vapor permeability was 0.20 g / m 2 A passing level is one that is less than 10 days.

[0110] 1-2.Total light transmittance The total light transmittance was measured for the barrier films of the examples and comparative examples. The light incident surface was the surface opposite to the light-transmitting substrate. A haze meter (HM-150, manufactured by Murakami Color Research Laboratory) was used as the measuring device. A total light transmittance of 85% or more was considered acceptable. The total light transmittance was measured in an atmosphere at a temperature of 23°C ± 5°C and a relative humidity of 40% to 65%. The sample was exposed to the atmosphere for 30 minutes or more before measurement. The total light transmittance measured in this manner refers to the total light transmittance at the initial stage.

[0111] 1-3.b * value Regarding the barrier films of the examples and comparative examples, * a * b * Color space b * Value (transparent b* The light incident surface was the surface opposite to the light-transmitting substrate. The measuring device used was a spectrophotometer manufactured by JASCO Corporation (product name: V670). * A value between -1.3 and 1.0 is considered a passing level. In addition, b * The values ​​were measured in an atmosphere at a temperature of 23°C ± 5°C and a relative humidity of 40% to 65%. The sample was exposed to the atmosphere for 30 minutes or more before the measurement. * The value is the initial b * means the value.

[0112] 1-4.Δx, Δy <Preparing a direct backlight for measurement> A commercially available LCD television (VIZIO PQ65-F1) equipped with a direct backlight was disassembled, and the direct backlight was removed. The direct backlight was equipped with a direct blue LED as a light source, with an emission center wavelength of 450 nm and a full width at half maximum of 20 nm. A light diffusion plate, a wavelength conversion sheet including a quantum dot-containing layer, a prism sheet, and a reflective polarizer (brightness enhancement film, 3M DBEF (registered trademark)) were arranged in this order on the light emission side of the light source. A reflective sheet was also provided on the side opposite the light emission side of the light source. The wavelength conversion sheet in the direct backlight was replaced with the wavelength conversion sheet of each of the Examples and Comparative Examples to obtain "direct backlights for measuring x and y values ​​at an initial stage." The wavelength conversion sheets of each of the Examples and Comparative Examples were exposed to an atmosphere at a temperature of 23°C ± 5°C and a relative humidity of 40% to 65% for 30 minutes or more before being incorporated into the direct backlights. Furthermore, the wavelength conversion sheet in the direct backlight was replaced with the wavelength conversion sheet of the Examples and Comparative Examples that had been subjected to a high temperature and humidity test (a test of exposing to an atmosphere of 60°C and 90% relative humidity for 1000 hours), to obtain "direct backlights for measuring x and y values ​​after high temperature and humidity test." The wavelength conversion sheets of the Examples and Comparative Examples that had been subjected to the high temperature and humidity test were quickly incorporated into the direct backlight in an atmosphere of a temperature of 23°C±5°C and a relative humidity of 40% to 65%. The direct type backlight for measurement was measured under the following measurement environment. <Initial x and y values> The direct backlight for measuring the initial x and y values ​​was turned on, and the x and y values ​​of the Yxy color system of the International Commission on Illumination (CIE) were measured from a frontal direction 500 mm away in a darkroom environment. The measurement atmosphere was a temperature of 23°C ± 5°C and a relative humidity of 40% to 65%. The sample was exposed to this atmosphere for at least 30 minutes before measurement. The measurement device used was a spectroradiometer (product name: SR-3AR) manufactured by Topcon Technohouse Corporation. <x and y values ​​after high temperature and humidity testing> After the high-temperature, high-humidity test, the direct backlight for measuring the x and y values ​​was turned on, and the x and y values ​​of the Yxy color system of the International Commission on Illumination (CIE) were measured from the front at a distance of 500 mm in a darkroom environment. The measurement atmosphere was a temperature of 23°C ± 5°C, and a relative humidity of 40% to 65%. The measurement device used was a spectroradiometer (product name: SR-3AR) manufactured by Topcon Technohouse Corporation. <Δx, Δy> The difference (Δx) between the initial x value and the x value after the high-temperature, high-humidity test, and the difference (Δy) between the initial y value and the y value after the high-temperature, high-humidity test were calculated. A value of Δx and Δy of 0.015 or less is considered acceptable.

[0113] 2. Preparation of Quantum Dot Dispersion In a glove box purged with nitrogen so that the oxygen concentration was 300 ppm or less, quantum dots and amino-modified silicone were mixed in the composition ratio shown below, and stirred with a magnetic stirrer for 4 hours while heating in a water bath at 90°C. The mixture was then filtered through a polypropylene filter with a pore size of 0.2 μm to obtain a CdSe / ZnS core-shell quantum dot dispersion. Quantum dots 0.9 parts by mass (Emission peak: 540 nm, serial number: 748056, Sigma-Aldrich) Quantum dots 0.9 parts by mass (Emission peak: 630 nm, serial number: 790206, Sigma-Aldrich) Amino-modified silicone 99 parts by weight (Genesee, product number: GP-344, viscosity: 670 mPa·s)

[0114] 3. Preparation of barrier film and wavelength conversion sheet [Example 1] Aluminum oxide was deposited by vacuum deposition on one surface of a biaxially stretched PET film (refractive index n0: 1.636, thickness t0: 12 μm) to form an inorganic oxide layer A (refractive index n A :1.77, thickness t A :8nm) was formed. Next, the following coating solution for forming an organic coating layer was applied onto the inorganic oxide layer A by gravure printing, and the coating solution was heat-treated at 180°C for 60 seconds to form an organic coating layer B (refractive index n B :1.55, thickness t B : 219 nm). Next, aluminum oxide was deposited on the organic coating layer B by vacuum deposition to form an inorganic oxide layer C (refractive index n C :1.77, thickness t C :8nm) was formed. Next, the following primer layer-forming coating solution 1 was applied onto the inorganic oxide layer C by gravure printing, and the coating solution was heat-treated at 80° C. for 60 seconds to form a primer layer D (refractive index n D :1.575, thickness t E : 270 nm) was formed to obtain the barrier film of Example 1. Two barrier films with the same configuration were produced.

[0115] <Preparation of Coating Solution for Forming Organic Coating Layer> Solution A was prepared by mixing tetraethoxysilane into a solution (pH 2.2) made by mixing water, isopropyl alcohol, and 0.5N hydrochloric acid while cooling to 10°C. Separately, solution B was prepared by mixing polyvinyl alcohol with a saponification value of 99% or more and isopropyl alcohol. Solutions A and B were mixed to prepare a coating liquid for forming an organic coating layer (solid content: 5% by mass). In the coating liquid for forming an organic coating layer, the mass ratio of tetraethoxysilane to polyvinyl alcohol was 29:4.

[0116] <Primer layer forming coating liquid 1> Polyester polyurethane polyol 50 parts by mass (Hydroxyl value: 62 mg KOH / g, solid content 20% by mass) Silane coupling agent 1 part by mass (3-glycidoxypropylmethyldimethoxysilane) Silica filler 1 part by mass (Average particle size 5μm) Hardener 1 part by mass (1,6-hexamethylene diisocyanate, solids content 35%) Solvent 50 parts by weight (methyl ethyl ketone)

[0117] A quantum dot-containing layer coating solution having the following formulation was applied to the primer layer side of one of the two barrier films prepared above, followed by drying, to obtain a laminate A having a quantum dot-containing layer that had not been irradiated with ionizing radiation. Next, the quantum dot-containing layer side of the laminate A that had not been irradiated with ionizing radiation was laminated against the primer layer side of the other barrier film, and then ultraviolet light was irradiated to promote curing of the ionizing radiation curable resin composition in the quantum dot-containing layer, thereby obtaining the wavelength conversion sheet of Example 1. The quantum dot-containing layer had a thickness of 100 μm and a refractive index of 1.48.

[0118] <Quantum dot-containing layer coating liquid> Multifunctional acrylate compound 58.11 parts by mass (Ethoxylated bisphenol A diacrylate; trade name "ABE-300" from Shin-Nakamura Chemical Co., Ltd.) Polyfunctional thiol compound 38.74 parts by mass (Pentaerythritol tetrakis(3-mercaptopropionate); trade name "PEMP" from SC Organic Chemicals) Photopolymerization initiator 0.5 parts by mass (Product name "Omnirad TPO H" from IGM Resins BV) 1.61 parts by mass of the quantum dot dispersion liquid prepared in "2" above Acetic acid 0.79 parts by mass Titanium oxide 0.25 parts by mass (Chemours' trade name "Tipure R-706"; particle size 0.36 μm)

[0119] [Examples 2 to 14] Barrier films and wavelength conversion sheets of Examples 2 to 14 were obtained in the same manner as in Example 1, except that the thicknesses of the organic coating layer B and the primer layer D were changed to the values ​​in Table 1. However, the primer layers in Examples 9 to 14 were formed from the following primer layer-forming coating liquid 2. The refractive index n D was 1.58.

[0120] <Primer layer forming coating liquid 2> Polyester polyurethane polyol 50 parts by mass (Hydroxyl value: 52 mg KOH / g, solid content 20% by mass) Silane coupling agent 1 part by mass (3-glycidoxypropylmethyldimethoxysilane) Silica filler 1 part by mass (Average particle size 5μm) Hardener 1 part by mass (1,3-xylene diisocyanate, solids 35%) Solvent 50 parts by weight (methyl ethyl ketone)

[0121] [Examples 15 to 16] Barrier films and wavelength-converting sheets of Examples 15 and 16 were obtained in the same manner as in Example 1, except that the inorganic oxide layer A and the inorganic oxide layer C were changed to vapor-deposited films of silicon oxide (refractive index: 1.457) and the thicknesses of the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C and the primer layer D were changed to the values ​​in Table 1.

[0122] [Comparative Example 1] A barrier film and a wavelength conversion sheet of Comparative Example 1 were obtained in the same manner as in Example 1, except that a primer layer D was formed on the organic coating layer B and the inorganic oxide layer C was not formed.

[0123] [Comparative Examples 2 to 15] Barrier films and wavelength conversion sheets of Comparative Examples 2 to 15 were obtained in the same manner as in Example 1, except that the thicknesses of the organic coating layer B and the primer layer D were changed to the values ​​in Table 2. However, the primer layers of Comparative Examples 12 to 15 were formed from the primer layer-forming coating liquid 2. The refractive index n D was 1.58.

[0124] [Table 1]

[0125] [Table 2]

[0126] As is clear from the results in Tables 1 and 2, it can be confirmed that the barrier films of the examples can suppress the change in color when applied to the wavelength conversion sheet. On the other hand, it can be seen that the barrier films of the comparative examples cannot suppress the change in color when applied to the wavelength conversion sheet. B is 150 nm or more and 500 nm or less, and t D / t B Although the value of the barrier film thickness was 0.55 or more and 1.65 or less, the barrier film did not have the inorganic oxide layer C, and therefore the barrier film had poor barrier properties and was unable to suppress the change in color. B and t D / t B Since at least one of these is outside the predetermined range, the change in color tone cannot be suppressed. [Explanation of symbols]

[0127] 10: Light transmitting base material 21: Inorganic oxide layer A 22: Inorganic oxide layer C 30: Organic coating layer B 40: Primer layer D 50: Quantum dot-containing layer 100: Barrier film 100a: Barrier film 100b: Barrier film 200: Wavelength conversion sheet 210: Light source 220: Optical board 221: Light guide plate 222: Diffuser 230:Reflector 240: Prism sheet 300: Backlight 301: Edge-lit backlight 302: Direct backlight

Claims

1. The film has an inorganic oxide layer A, an organic coating layer B, an inorganic oxide layer C, and a primer layer D formed in this order on a light-transmitting substrate, the organic coating layer B contains at least one selected from a water-soluble polymer and a metal alkoxide compound, The thicknesses of the light-transmitting substrate, the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C, and the primer layer D are respectively defined as t 0 , t A , t B , t C , and t D When we define t B is 200 nm or more and 450 nm or less, and t D / t B is 0.55 or more and 1.65 or less, Barrier film for wavelength conversion sheets.

2. 2. The barrier film according to claim 1, wherein the inorganic oxide layer A and the inorganic oxide layer C comprise aluminum oxide or silicon oxide.

3. 3. The barrier film according to claim 1, wherein the organic coating layer B comprises polyvinyl alcohol.

4. A light-transmitting substrate having, in this order, an inorganic oxide layer A, an organic coating layer B, an inorganic oxide layer C, and a primer layer D, the primer layer D contains a polyurethane-based resin composition, When the thicknesses of the light-transmitting substrate, the inorganic oxide layer A, the organic coating layer B, the inorganic oxide layer C, and the primer layer D are defined as t 0 , t A , t B , t C , and t D , respectively, t B is 200 nm or more and 450 nm or less, and t D / t B is 0.55 or more and 1.65 or less; Barrier film for wavelength conversion sheets.

5. 5. A wavelength conversion sheet comprising a quantum dot-containing layer containing quantum dots and barrier films laminated on both sides of the quantum dot-containing layer, wherein the barrier film is formed such that a surface of the barrier film opposite to a light-transmitting substrate faces the quantum dot-containing layer.

6. 6. A backlight comprising: at least one light source that emits primary light; an optical plate that is disposed adjacent to the light source and that guides or diffuses light; and a wavelength-conversion sheet that is disposed on the light-exiting side of the optical plate, wherein the wavelength-conversion sheet is the wavelength-conversion sheet according to claim 5.

7. A liquid crystal display device comprising a backlight and a liquid crystal panel, wherein the backlight is the backlight according to claim 6.

Citation Information

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