QUANTUM DOT GLASS PLATE AND MANUFACTURING METHOD THEREOF
20170334716 · 2017-11-23
Inventors
Cpc classification
F21V9/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B82Y20/00
PERFORMING OPERATIONS; TRANSPORTING
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B82Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B82B1/001
PERFORMING OPERATIONS; TRANSPORTING
B32B2457/20
PERFORMING OPERATIONS; TRANSPORTING
B32B17/06
PERFORMING OPERATIONS; TRANSPORTING
B32B7/14
PERFORMING OPERATIONS; TRANSPORTING
B32B5/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B82B1/00
PERFORMING OPERATIONS; TRANSPORTING
B32B17/06
PERFORMING OPERATIONS; TRANSPORTING
B82Y20/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A quantum dot glass plate includes a first glass substrate, a second glass substrate correspondingly parallel with the first glass substrate, and a glue layer arranged between the first glass substrate and the second glass substrate, where the glue layer includes at least one glue frame arranged in a line. A shape of the first glass substrate is same as a shape as the second glass substrate, and edges of the glue layer correspond to edges of the first glass substrate and the second glass substrate.
Claims
1. A quantum dot glass plate, comprising a first glass substrate; a second glass substrate correspondingly parallel with the first glass substrate, and a shape of the first glass substrate is same as a shape as the second glass substrate; a glue layer arranged between the first glass substrate and the second glass substrate, and edges of the glue layer correspond to edges of the first glass substrate and the second glass substrate; wherein the glue layer comprises at least one glue frame that are lined side by side; each of the glue frames comprises at least three edge sub-frames, and heads and tails of at least three edge sub-frames are successively connected with each other, and wherein quantum dots are uniformly distributed in each of the glue frames.
2. The quantum dot glass plate as claimed in claim 1, wherein shapes and sizes of the first glass substrate and the second glass substrate are the same, and shapes and sizes of at least one or more glue frames arranged in the same glue layer are the same.
3. The quantum dot glass plate as claimed in claim 1, wherein the glue frame is a rectangular ring structure.
4. The quantum dot glass plate as claimed in claim 1, wherein a width of the edge sub-frame ranges from 0.1 mm to 1 mm, and a distance between any two adjacent glue frames ranges from 0.1 mm to 0.5 mm.
5. The quantum dot glass plate as claimed in claim 1, wherein a distance from the edge of the glue layer to the edge of the first glass substrate ranges from 0.1 mm to 0.5 mm.
6. A manufacturing method for a quantum dot glass plate, comprising the following steps: providing a first glass substrate and a second glass substrate that is correspondingly parallel with the first glass substrate; arranging a glue layer in a surface of a first side of the first glass substrate; the first side of the first glass substrate faces the second glass substrate; an edge of the glue layer corresponds to an edge of the first glass substrate, the glue layer comprises at least one glue frame that are line side by side, and the glue frames are arranged side by side; each of the glue frame comprises at least three edge sub-frames, and heads and tails of at least three edge sub-frames are successively connected with each other; coating the quantum dots in each of the glue frames; attaching the second glass substrate to the first glass substrate by the glue layer; curing the glue layer to form a complex glass plate; cutting the complex glass plate into at least one quantum dot glass plate along connecting position of the two adjacent glue frames; smoothing edges of the quantum dot glass plate.
7. The manufacturing method for the quantum dot glass plate as claimed in claim 6, wherein shapes and sizes of the first glass substrate and the second glass substrate are same, and shapes and sizes of at least one or more glue frames arranged in a same glue layer are same.
8. The manufacturing method for the quantum dot glass plate as claimed in claim 6, wherein the glue frame is a rectangular ring structure.
9. The manufacturing method for the quantum dot glass plate as claimed in claim 1, wherein width of the edge sub-frame ranges from 0.1 mm to 1 mm; distance between any two adjacent glue frames ranges from 0.1 mm to 0.5 mm.
10. The manufacturing method for the quantum dot glass plate as claimed in claim 6, wherein distance from the edge of the glue layer to the edge of the first glass substrate ranges from 0.1 mm to 0.5 mm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020] Reference numbers of major elements of the drawings is as follow: [0021] 1. a first glass substrate 2. a second glass substrate 3. a glue layer 4. a glue frame 5. a quantum dot 41. a sub-frame 100. a quantum dot glass plate of the prior art 101. a first non-effective zone of the prior art 102. a second non-effective zone of the prior art 200. a quantum dot glass plate of the present disclosure 201. a first non-effective zone of the present disclosure 202. a second non-effective zone of the present disclosure
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0022] The following description of every embodiment with reference to the accompanying drawings is used to exemplify a specific embodiment, which may be carried out in the present invention. The embodiments completely introduce the present disclosure for person skilled in the art, which makes technology content clear and understand. The present disclosure embodies through different types of the embodiment. The protection range of the present disclosure is not limited in the embodiment of the present disclosure.
[0023] In the drawings, the components having similar structures are denoted by the same numerals. The structures and the components have similar function can use similar numerals to express. Thickness and size of each of the components of the drawings is randomly shown, the present disclosure does not limit thickness and size of each of the components of the drawings. In order to make the drawings clear, the thicknesses of some components in the drawings properly are increased.
[0024] When the first component is described as “arranged to the second component” or “connected to the second component”, it should understand that the first component is directly arranged to the second component or the first component is directly connected to the second component, or it should understand that the first component is indirectly arranged to the second component via the third component or the first component is indirectly connected to the second component via the third component.
[0025] In
[0026] The shape of the first glass substrate 1 is the same as the shape as the second glass substrate 2, and the size of the first glass substrate 1 is the same as the size as the second glass substrate, and shapes and sizes of a plurality of glue frames arranged in a same glue layer are same. The number of glue frames of the embodiment of the present disclosure is preferably five, where the glue frame is rectangular ring structure. The first glass substrate 1 and the second glass substrate 2 uses a specific strengthened glass, for example, the glass is chemically processed, which improves strength of the quantum dot glass plate.
[0027] A glue layer 3 of the embodiment of the present disclosure is arranged between the first glass substrate 1 and the second glass substrate 2, where edges of the glue layer 3 correspond to edges of the first glass substrate 1 and the second glass substrate 2. Distance from the edge of the glue layer 3 to the edge of the first glass substrate 1 ranges from 0.1 mm to 0.5 mm, and the embodiment of the present disclosure preferably uses 0.3 mm.
[0028] The glue layer 3 comprises a plurality of the glue frames 4, where a plurality of the glue frames 4 are arranged side by side, and the embodiment of the present disclosure preferably uses five glue frames. The number of the glue frames 4 can be adjusted according to requirement. In the embodiment of the present disclosure, the glue frames 4 are formed by using glue to coat, and the glue frames 4 have the rectangular ring structure. The glue layer 3 and the glue frames 4 both use an ultraviolet light curing glue, an electron bean curing glue, or a heat curing glue. The quantum dots 5 are uniformly distributed in each of the glue frames 4. The quantum dots comprise but are not limited to copper indium diselenide material, copper indium gallium selenide material, or cadmium telluride material. Distance between any two adjacent glue frames 4 ranges from 0.1 mm to 0.5 mm, and the embodiment of the present disclosure preferably uses 0.5 mm, which is convenient for follow-up cutting operation, ensures good sealing performance of packaging of cut quantum dots, and makes the non-effective zone of cutting quantum dot glass plate smaller, further improving availability of the glass substrate.
[0029] Each of the glue frames comprises four edge sub-frames 41, where heads and tails of four edge sub-frames 41 are successively connected with each other, width of the edge sub-frame 41 ranges from 0.1 mm to 1 mm, and the embodiment of the present disclosure preferably uses 0.5 mm. Compared with prior art, the width of the edge sub-frame 41 is obviously smaller, which reduces the non-effective zone of the quantum got glass plate and improves availability of the glass substrate.
[0030] In
[0031] step 1 (S1): providing the first glass substrate and the second glass substrate that is correspondingly parallel with the first glass substrate. The first glass substrate and the second glass substrate uses specific strengthened glass, for example, the glass is chemically processed, which improves strength of the quantum dot glass plate.
[0032] step 2 (S2): arranging the glue layer in a surface of a first side of the first glass substrate, where the first side of the first glass substrate faces the second glass substrate. The edge of the glue layer corresponds to the edge of the first glass substrate, namely the edges of the glue layer, the first glass substrate, and the second glass substrate are in alignment. The glue layer comprises four the glue frames, where a plurality of the glue frames are arranged side by side, and the glue frame is the rectangular ring structure. Each of the glue frames comprises four edge sub-frames, where heads and tails of four edge sub-frames are successively connected with each other. The glue layer and the glue frames both use the ultraviolet light curing glue, the electron bean curing glue, or the heat curing glue. Distance between the edge of the glue layer and the edge of the first glass substrate ranges from 0.1 mm to 0.5 mm, and the embodiment of the present disclosure preferably uses 0.3 mm.
[0033] step 3 (S3): coating the quantum dots in each of the glue frames. The quantum dots are a name for a nanocrystal, where the quantum dot comprises nano-particles composed of category II-VI element or category III-V element. Particle size of the quantum dot ranges from 1 nm to 10 nm. The quantum dots have a wide excitation spectrum and a narrow excitation spectrum. Emission spectrum of the quantum dot is controlled by changing size of the quantum dot. Emission spectrum of the quantum dot can cover entire visible zone via changing the size of the quantum dot and chemical constitution of the quantum dot. The quantum dots comprise but are not limited to copper indium diselenide material, copper indium gallium selenide material, or cadmium telluride material.
[0034] step 4 (S4): attaching the second glass substrate to the first glass substrate by the glue layer, where the first glass substrate is closely attached to the second glass substrate by the glue layer.
[0035] step 5 (S5): curing the glue layer to form a complex glass plate, where curing process is according to a type of the glue of the glue layer to use curing method. If the glue layer is ultraviolet light curing glue, the curing method is the ultraviolet light curing method. If the glue layer is the electron bean curing glue, the curing method is the electron bean curing method. If the glue layer is the heat curing glue, the curing method is the heat curing method.
[0036] step 6 (S6): cutting the complex glass plate into at least one quantum dot glass plate along a connecting position of the two adjacent glue frames. Each of cutting line is at the connecting position of the two adjacent glue frames. The glue frames 4 is the rectangular ring structure, therefore, the quantum dots are well sealed.
[0037] step 7 (S7): smoothing edges of the quantum dot glass plate. Because edges of the cutting quantum dot glass plate have burrs, the edges of the cutting quantum dot glass plate are polished to be smooth.
[0038] The proper quantum dot glass plate is made via the above-steps. The next step is packaging the quantum dot glass plate and achieves deliver goods
[0039] In
[0040] Advantages of the present disclosure are effectively packaging the nanoscale quantum dot, increasing the color gamut saturation value, improving display effect, largely decreasing the width of the non-effective zone of the quantum dot glass plate, and having narrower frames. The present disclosure cuts the complex glass plate into a plurality of the quantum dot glass plates according position of the glue frames, which improves production efficiency and decreases processing cost. The present disclosure simply upgrades equipment to achieve, which conveniently operates, improves flexibility, and decreases upgraded costs, further being suitable for large-scale promotions and applications.
[0041] It should be understood that the present disclosure has been described with reference to certain preferred and alternative embodiments which are intended to be exemplary only and do not limit the full scope of the present disclosure as set forth in the appended claims.