COLOR-CONVERTING SUBSTRATE FOR LIGHT-EMITTING DIODE AND METHOD FOR PRODUCING SAME
20170025584 ยท 2017-01-26
Assignee
Inventors
- Ki Yeon Lee (Chungcheongnam-do, KR)
- Hyung Soo Moon (Chungcheongnam-do, KR)
- Yoon Seuk Oh (Chungcheongnam-do, KR)
- Jhee Mann Kim (Chungcheongnam-do, KR)
- Choon Bong Yang (Chungcheongnam-do, KR)
Cpc classification
H10H20/872
ELECTRICITY
G02F1/133614
PHYSICS
H10H20/854
ELECTRICITY
H10H20/8516
ELECTRICITY
International classification
G02F1/1335
PHYSICS
Abstract
The present invention relates to a color-converting substrate of a light-emitting diode and a method for producing same, and more specifically to a color-converting substrate of a light-emitting diode capable of completely protecting the quantum dots (QD) supported in the interior from the exterior as hermetic sealing is possible, and a method for producing the color-converting substrate. To that end, provided are a color-conversion substrate of a light-emitting diode and a method for producing the color-conversion substrate, the color-conversion substrate of a light-emitting diode comprising: a first substrate and a second substrate arranged facing each other on a light-emitting diode; a sheet, having a hole, arranged in between the first and second substrates; QDs filling the hole; and sealing material disposed in between the first substrate and the lower surface of the sheet and in between the second substrate the upper surface of the sheet, wherein the sealing material is disposed along the edge of the hole, and the sheet is made of a substance allowing laser sealing of the sealing material, first substrate and second substrate.
Claims
1. A color-converting substrate for a light-emitting diode, comprising: a first substrate and a second substrate disposed on a light-emitting diode to face each other; a sheet disposed between the first substrate and the second substrate, the sheet comprising a hole formed therein; quantum dots contained in the hole; and a sealing material disposed along peripheral portions of the hole between the first substrate and a bottom surface of the sheet and between the second substrate and a top surface of the sheet, wherein the sheet is formed from a material allowing laser sealing to be performed between the sealing material, the first substrate, and the second substrate.
2. The color-converting substrate of claim 1, wherein the sheet comprises an aluminum foil having an anodized surface.
3. The color-converting substrate of claim 1, wherein the sheet comprises a 42-nickel alloy sheet.
4. The color-converting substrate of claim 1, wherein the sealing material comprises frit glass.
5. The color-converting substrate of claim 1, wherein the light-emitting diode comprises a blue light-emitting diode, the quantum dots converting a wavelength of a portion of light emitted by the blue light-emitting diode into yellow light.
6. A method of producing a color-converting substrate for a light-emitting diode, the method comprising: preparing a sheet having a hole formed in a surface thereof; applying a first sealing material to a first substrate to allow the hole to be edged by the first sealing material; aligning the sheet on the first sealing material such that the hole is placed in a region edged by the first sealing material; filling the hole with quantum dots; applying a second sealing material to the second substrate to allow the hole filled with the quantum dots to be edged by the second sealing material; and disposing the second substrate on the sheet such that the hole is edged by the second sealing material and performing laser sealing by irradiating with laser beams.
7. The method of claim 6, wherein preparing the sheet comprises: forming the hole in the sheet by machining the sheet formed of an aluminum foil; and forming an aluminum thin film on a surface of the sheet by anodizing the sheet.
8. The method of claim 6, wherein preparing the sheet comprises forming the hole in the sheet by machining the sheet formed from a 42-nickel alloy.
9. The method of claim 6, wherein frit glass in a paste form is used as the first sealing material and the second sealing material.
10. The method of claim 6, wherein the hole comprises a plurality of holes, and the method further comprises, after forming the plurality of holes in the sheet and performing the laser sealing for the plurality of holes, cutting the color-converting substrate into a plurality of cells, each cell defined by the first sealing material and the second sealing material.
Description
DESCRIPTION OF DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
MODE FOR INVENTION
[0028] Hereinafter, a color-converting substrate for a light-emitting diode (LED) and a method of producing the same according to embodiments of the present disclosure will be described in detail with reference to the following drawings.
[0029] In the following description, detailed descriptions of well-known functions or components will be omitted in the case that the subject matter of the present disclosure is rendered unclear by the inclusion thereof.
[0030] As illustrated in
[0031] The color-converting substrate 100 according to the embodiment disposed on the LED includes a first substrate 110, a second substrate 120, a sheet 130, quantum dots (QDs) 140, and a sealing material 150.
[0032] The first substrate 110 and the second substrate 120 are sequentially disposed on the LED to face each other. That is, the first substrate 110 and the second substrate 120 are spaced apart from each other by the sheet 130, the QDs 140, and the sealing material 150 to face each other. The first substrate 110 and the second substrate 120 protect the sheet 130, the QDs 140, and the sealing material 150 and function as paths through which light emitted by the LED exits outwards. In this regard, the first substrate 110 and the second substrate 120 may be formed from transparent glass. For example, the first substrate 110 and the second substrate 120 may be formed from borosilicate glass or soda lime glass.
[0033] The sheet 130 is disposed between the first substrate 110 and the second substrate 120. The sheet 130 is a structure for accommodating the QDs 140. In this regard, a hole 131 is formed in the sheet 130. In an embodiment of the present disclosure, the sheet 130 is formed from a material allowing laser sealing to be performed between the sealing material 150, the first substrate 110, and the second substrate 120 such that the color-converting substrate 100 can be hermetically sealed. For example, the sheet 130 may be an aluminum foil having an anodized surface. The coefficient of thermal expansion (CTE) of aluminum (Al) is higher than either the CTE of the first substrate 110 and the second substrate 120 formed from glass or the CTE of the sealing material 150 formed from frit glass. When the aluminum foil is used, a mismatch is formed on the bonding surface due to the CTE difference at the time of bonding, thereby making hermetic sealing impossible. Thus, in an embodiment of the present disclosure, the anodized aluminum foil having an alumina (Al.sub.2O.sub.3) thin film formed on the surface thereof through anodizing may be used as a structure for accommodating the QDs 140, since the CTE the aluminum foil is similar to the CTEs of the first substrate 110, the second substrate 120, and the sealing material 150. At this time, when the anodized aluminum foil is used as the sheet 130, the first substrate 110 and the second substrate 120 may be formed from soda lime glass. In addition, in an embodiment of the present disclosure, the sheet 130 may be formed from a metal alloy, the CTE of which is similar to the CTEs of the first substrate 110, the second substrate 120, and the sealing material 150, such as a 42-nickel (Ni) alloy. In this case, the first substrate 110 and the second substrate 120 may be formed from borosilicate glass.
[0034] The QDs 140 are contained in the hole 131 formed in the sheet 130. At this time, the QDs 140 can be be hermetically sealed by the first substrate 110, the second substrate 120, and the sealing material 150 that are laser-sealed to be entirely protected from the outside. The QDs 140 are nanocrystals of a semiconductor material, the diameter of which ranges from about 1 m to about 10 m, and exhibit a quantum confinement effect. The QDs 140 generate wavelength-converted light, i.e. fluorescent light, by converting the wavelength of light emitted by the LED. In an embodiment of the present disclosure, since a blue LED is used as the LED, the QDs 140 may be formed from a QD material that converts the wavelength of a portion of light emitted by the blue LED to yellow light to produce white light through color mixing with blue light.
[0035] The sealing material 150 is disposed between the first substrate 110 and the bottom surface of the sheet 130 and between the second substrate 120 and the top surface of the sheet 130. The sealing material 150 is disposed along the periphery of the hole 131 formed in the sheet 130. Thus, when the sealing material 150, the first substrate 110, and the second substrate 120 are laser-sealed, the QDs 140 contained in the hole 131 can be hermetically sealed by the first substrate 110, the second substrate 120, and the sealing material 150 to be entirely protected from the outside. In an embodiment of the present disclosure, the sealing material 150 may be formed from frit glass to be laser-sealed with the first substrate 110 and the second substrate 120 formed from glass.
[0036] Hereinafter, a color-converting substrate for an LED according to another embodiment of the present disclosure will be described with reference to
[0037]
[0038] As illustrated in
[0039] The color-converting substrate 200 according to the present embodiment is substantially the same as the color-converting substrate 100 according to the former embodiment, except that a plurality of holes are formed in a single sheet. Thus, the same reference numerals will be used to designate the same components and detailed descriptions thereof will be omitted.
[0040] The color-converting substrate 200 for an LED according to another embodiment of the present disclosure is, for example, a substrate used for a plurality of LEDs acting as a backlight source of a large screen LCD. In this regard, a plurality of holes 231 are formed in the sheet 230 in accordance with the arrangement of the plurality of LEDs. Each of the plurality of holes 231 is filled with the QDs 140. The sealing material 150 is disposed along the periphery of each of the plurality of holes 231 between the sheet 230 and the top surface of the first substrate 110 and between the sheet 230 and the bottom surface of the second substrate 120. At this time, the sheet 230 may be formed from the same material as the sheet 130 according to the former embodiment of the present disclosure.
[0041] As described above, in the color-converting substrates 100 and 200 for an LED according to embodiments of the present disclosure, since the sheets 130 and 230 accommodating the QDs 140 are formed from a material allowing laser sealing to be performed between the first substrate 110, the second substrate 120, and the sealing material 150, the QDs 140 can be hermetically sealed, such that the QDs 140 contained in the holes 131 and 231 of the sheets 130 and 230 can be entirely protected from the outside. This can consequently increase the lifespan of an LED package including the color-converting substrates 100 and 200.
[0042] Hereinafter, a method of producing a color-converting substrate for an LED according to an embodiment of the present disclosure will be described with reference to
[0043] As illustrated in
[0044] First, as illustrated in
[0045] The next first sealing material application step S2 is a step of applying the sealing material (150 in
[0046] The subsequent sheet alignment step S3 is a step of aligning the sheet 230 on the sealing material (150 in
[0047] As illustrated in
[0048] As illustrated in
[0049] Finally, the laser sealing step S6 is a step of sealing the first substrate (110 in
[0050] When the laser sealing step S6 is completed as described above, the color-converting substrate 200 for an LED according to the embodiment of the present disclosure is manufactured. The color-converting substrate 200 manufactured according to the embodiment of the present disclosure is, for example, a substrate used for a plurality of LEDs acting as a backlight source of a large screen LCD. For the use as a single color-converting substrate for a single LED (i.e. the substrate 100 in
[0051] When the color-converting substrates (100 in
[0052] The foregoing descriptions of specific exemplary embodiments of the present disclosure have been presented with respect to the drawings. They are not intended to be exhaustive or to limit the present disclosure to the precise forms disclosed herein, and many modifications and variations are obviously possible for a person having ordinary skill in the art in light of the above teachings.
[0053] It is intended therefore that the scope of the present disclosure not be limited to the foregoing embodiments, but be defined by the Claims appended hereto and their equivalents.
DESCRIPTION OF REFERENCE NUMERALS IN DRAWINGS
[0054] 100, 200: color-converting substrate [0055] 110: first substrate [0056] 120: second substrate [0057] 130, 230: sheet [0058] 131, 231: hole [0059] 140: QD [0060] 150: sealing material