The present invention relates to an optical film, and more particularly to a composite quantum-dot optical film.
The quantum dot is a semiconductor particle having a nanometer size and a spherical shape. The colored spectrum can be generated when the quantum dots are excited by light or electricity. The color of the excited light is determined according to the material and the size of the quantum dot. Because quantum dots can change the color of the light emitted by a light source, they can be widely used in display devices, such as liquid crystal displays (LCD).
The conventional barrier film, for protecting the quantum dot layer, is made by sputtering by expensive vacuum equipment. Furthermore, there is often a problem with adhesion between the surface of the quantum dot layer and the surface of the conventional barrier film that needs a surface adhesion treatment.
Since quantum dots are more sensitive to water and oxygen molecules, most of them are equipped with expensive optical grade oxygen barrier moisture barrier films containing inorganic materials. However, these types of barrier films still account for the highest cost structure of the quantum dot film.
Accordingly, the present invention proposes a new solution to overcome the above-mentioned disadvantages.
One objective of the present invention is to develop a new type of composite barrier film made of organic polymer materials, which not only meets high light-transmission performance requirements with good transmittance and stiffness but also improves the gas and moisture barrier ability, the new type of composite barrier film can be used as a substrate with good stiffness for supporting a quantum-dot layer.
In one embodiment, the present invention discloses a composite barrier film, wherein the composite barrier film comprises: a first substrate, a second substrate and a first barrier layer, wherein each of the first substrate and the second substrate comprises a first polymer material, and the first barrier layer comprises a first organic material capable of being water-resistant and oxygen-resistant, wherein the first barrier layer is disposed between the first substrate and the second substrate.
In one embodiment, the present invention discloses a composite quantum-dot optical film, wherein the composite quantum-dot optical film comprises: a quantum-dot layer, comprising a binder and a plurality of quantum dots dispersed in the binder; a first composite structure, comprising a first substrate and a second substrate, wherein each of the first substrate and the second substrate is made of a first polymer material, wherein a first barrier layer is made of a first organic material and capable of being water-resistant and oxygen-resistant is disposed between the first substrate and the second substrate, wherein the first composite structure is disposed on a top surface of the quantum-dot layer.
In one embodiment, the composite quantum-dot optical film further comprises a second composite structure comprising a third substrate and a fourth substrate, wherein each of the third substrate and the fourth substrate is made of a second polymer material, wherein a second barrier layer is made of a second organic material and is disposed between the third substrate and the fourth substrate, wherein the second composite structure is disposed on a bottom surface of the quantum-dot layer.
In one embodiment, the organic material comprises at least one of the following polymer materials capable of being oxygen-resistant: PVA (Polyvinyl alcohol), PVDC (Polyvinylidene chloride), PEI(Polyethyleneimine), EVOH (Ethylene-vinyl alcohol copolymer), BOPA (Biaxially oriented polyamide film, or at least one of the following polymer materials capable of being water-resistant: PE(polyethylene), CPP (unstretched polypropylene film), OPP (0-phenyl phenol), BOPP (Biaxially oriented polypropylene film).
In one embodiment, the organic material comprises at least one of the following polymer materials capable of being oxygen-resistant: PVA (Polyvinyl alcohol), PVDC (Polyvinylidene chloride), PEI(Polyethyleneimine), EVOH (Ethylene-vinyl alcohol copolymer), BOPA (Biaxially oriented polyamide film, and at least one of the following polymer materials capable of being water-resistant: PE(polyethylene), CPP (unstretched polypropylene film), OPP (0-phenyl phenol), BOPP (Biaxially oriented polypropylene film).
In one embodiment, the first organic material is coated on the first substrate.
In one embodiment, the second organic material is coated on the third substrate.
In one embodiment, the thickness of the first barrier layer is in the range of 50-70 um.
In one embodiment, the thickness of the second barrier layer is in the range of 50-70 um.
In one embodiment, the thickness of the first substrate made of the first polymer is in the range of 12-50 um.
In one embodiment, the thickness of the second substrate made of the second polymer is in the range of 12-50 um.
In one embodiment, the thickness of the first substrate made of the first polymer is in the range of 12-50 um.
In one embodiment, the thickness of the second substrate made of the second polymer is in the range of 12-50 um.
In one embodiment, the thickness of the quantum-dot layer is in the range of 150-300 um.
In one embodiment, a plurality of diffusion particles are dispersed in the binder, wherein the plurality of diffusion particles comprise organic particles, and a concentration of the plurality of diffusion particles in the binder is 2 to 40 wt %.
In one embodiment, the quantum dots comprise cadmium (Cd), wherein the concentration of the Cd is 0.1 to 20 wt %.
In one embodiment, the quantum dots comprise cadmium (Cd), wherein the concentration of the Cd is 0.3 to 8 wt %.
In one embodiment, the present invention discloses a method to form a composite barrier film, wherein the method comprises: coating an organic material on a first substrate, wherein the organic material is capable of water-resistant and oxygen-resistant; attaching the coated first organic material with a second substrate, wherein the coated first organic material is disposed between the first substrate and the second substrate.
In one embodiment, the quantum-dot layer further comprises a plurality of diffusing particles dispersed in the binder.
In one embodiment, the binder comprises PET (polyethylene terephthalate).
In one embodiment, the present invention discloses a method to form a composite quantum-dot optical film, the method comprising: coating an organic material on a first substrate, wherein the organic material is capable of being water-resistant and oxygen-resistant; attaching the coated first organic material with a second substrate to form a first composite structure, wherein the coated first organic material is disposed between the first substrate and the second substrate; and attaching the first composite structure with a quantum-dot layer comprising a binder and a plurality of quantum dots dispersed in the binder.
The detailed technology and above preferred embodiments implemented for the present invention are described in the following paragraphs accompanying the appended drawings for people skilled in this field to well appreciate the features of the claimed invention.
The foregoing aspects and many of the accompanying advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description when taken in conjunction with the accompanying drawings, wherein:
The detailed explanation of the present invention is described as follows. The described preferred embodiments are presented for purposes of illustrations and descriptions, and they are not intended to limit the scope of the present invention.
In one embodiment, the composite quantum-dot optical film 100 further comprises a second composite structure 120 comprising a third substrate 121 and a fourth substrate 123, wherein each of the third substrate 121 and the fourth substrate 123 comprises a second polymer material, wherein a second barrier layer 122 comprising a second organic material is disposed between the third substrate 121 and the fourth substrate 123, wherein the second composite structure 120 is disposed on a bottom surface of the quantum-dot layer 101.
In one embodiment, the organic material comprises at least one of the following materials capable of being oxygen-resistant: PVA (Polyvinyl alcohol), PVDC (Polyvinylidene chloride), AC, EVOH (Ethylene vinyl alcohol), BOPA (Biaxially oriented polyamide), or at least one of the following materials capable of being water-resistant: PE(polyethylene), CPP (Cast Polypropylene), OPP (Oriented Polypropylene), BOPP (Biaxially Oriented Polypropylene).
In one embodiment, the organic material comprises at least one of the following materials capable of being oxygen-resistant: PVA (Polyvinyl alcohol), PVDC (Polyvinylidene chloride), AC, EVOH (Ethylene vinyl alcohol), BOPA (Biaxially oriented polyamide), and at least one of the following materials capable of being water-resistant: PE(polyethylene), CPP (Cast Polypropylene), OPP (Oriented Polypropylene), BOPP (Biaxially Oriented Polypropylene).
In one embodiment, the first organic material is coated on the first substrate.
In one embodiment, the second organic material is coated on the third substrate.
In one embodiment, as shown in
In one embodiment, the thickness of the second barrier layer is in the range of 50-70 um.
In one embodiment, as shown in
In one embodiment, the thickness of the second substrate made of the second polymer is in the range of 12-50 um.
In one embodiment, the thickness of the quantum-dot layer is in the range of 150-300 um.
In one embodiment, as shown in
In one embodiment, the first polymer comprises an acrylic resin.
In one embodiment, the second polymer comprises an acrylic resin.
In one embodiment, the acrylic resin comprises a monomer (Monomer) type.
In one embodiment, the acrylic resin comprises a multi-body (Oligomer) type.
In one embodiment, the first substrate 211 comprises at least one of the following materials: PET (polyethylene terephthalate), PEN (polyethylene naphtholate), PAR (polyacrylate), PC (polycarbonates), or TAC (cellulose triacetate).
In one embodiment, the second substrate 311 comprises at least one of the following materials: PET (polyethylene terephthalate), PEN (polyethylene naphtholate), PAR (polyacrylate), PC (polycarbonates), or TAC (cellulose triacetate).
In one embodiment, the binder 101a of the quantum-dot layer 101 comprises at least one of the following materials: PET (polyethylene terephthalate), PEN (polyethylene naphtholate), PAR (polyacrylate), PC (polycarbonates), or TAC (cellulose triacetate).
In one embodiment, the binder 101a of the quantum-dot layer 101 comprises at least one of the following materials: PET (polyethylene terephthalate), PEN (polyethylene naphtholate), PAR (polyacrylate), PC (polycarbonates), or TAC (cellulose triacetate).
In one embodiment, the diffusion particles can be organic particles, such as PMMA, PS, Melamine, etc., or inorganic particles, such as Silicon, SiO2, TiO2, CaCO3, Al2O3, ZrO2, etc. The concentration can be from 2 to 40%, and the best is 5-15%.
In one embodiment, the quantum dots comprise cadmium (Cd), wherein the concentration of the Cd is 0.1 to 20 wt %.
In one embodiment, the quantum dots comprise cadmium (Cd), wherein the concentration of the Cd is 0.3 to 8 wt %.
In one embodiment, the diffusion particles comprise organic particles, wherein. the concentration of the diffusion particles is 2 to 40 wt %.
In one embodiment, the diffusion particles comprise organic particles, wherein. the concentration of the diffusion particles is 5-15 wt %.
In one embodiment, the first polymer comprises an acrylic resin.
In one embodiment, the second polymer comprises an acrylic resin.
In one embodiment, the acrylic resin comprises a monomer (Monomer) type.
In one embodiment, the acrylic resin comprises a multi-body (Oligomer) type.
In one embodiment, the binder 201B of the quantum-dot layer 201 comprises PET (polyethylene terephthalate).
In one embodiment, the plurality of quantum dots 201A comprises red quantum dots and green quantum dots.
In one embodiment, as shown in
In one embodiment, a quantum-dots dispensing solution is coated on the lower composite structure 120 to form the quantum-dot layer, and at the same time, the upper composite structure 110 is laminated on the quantum-dot layer by a roll-to-roll laminating process.
In one embodiment, as shown in
In one embodiment, a quantum-dots dispensing solution is coated on the lower composite structure 120 to form the quantum-dot layer, and at the same time, the upper composite structure is laminated on the quantum-dot layer by a roll-to-roll laminating process.
The advantages of the present invention include: 1. organic materials with different properties can be applied to the polymer substrate film through the coating or lamination process to form a composite film as a substrate with gas or moisture barrier capability to improve the reliability and stability of the quantum dot optical film; 2. the composite film is compatible with the mechanical properties and light transmittance of the original polymer substrate, and the original polymer substrate can also be customized and processed to obtain high light-extraction efficiency of the quantum dot film; 3. this type of gas barrier and moisture barrier composite membrane has the advantages of low cost and good for green environment.
The above disclosure is related to the detailed technical contents and inventive features thereof. People skilled in this field may proceed with a variety of modifications and replacements based on the disclosures and suggestions of the invention as described without departing from the characteristics thereof. Nevertheless, although such modifications and replacements are not fully disclosed in the above descriptions, they have substantially been covered in the following claims as appended.
This application claims the benefit of U.S. provisional patent application No. 63/218,931, filed on Jul. 7, 2021, which is hereby incorporated herein by reference.
Number | Date | Country | |
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63218931 | Jul 2021 | US |