1. Field of Invention
The invention relates to a light source and a method for fabricating the same. More particularly, the invention relates to a planar light source with high brightness and a method for fabricating the same.
2. Description of Related Art
Recently, the liquid crystal display (LCD) has gradually replaced the cathode ray tube (CRT) display and becomes a mainstream display in the market. However, the liquid crystal display panel cannot emit light by itself, so a back light module must be disposed below the liquid crystal display panel for providing a light source, so as to display pictures. As the light source provided by the back light module for the liquid crystal display panel is a surface light source, if a planar light source with high brightness is directly adopted for providing a surface light source for a liquid crystal display panel, the display brightness of the LCD can be enhanced.
The illumination principle of the planar light source 100 is to generate high-energy electrons by the high voltage difference between the electrode pairs 130, and then hit the discharge gas 180 with the generated high-energy electrons, so as to generate so-called plasma. Afterward, activated atoms in an excited state in the plasma will emit ultraviolet rays when returning to the ground state, and then the emitted ultraviolet rays further activate the phosphor layer 150 in the planar light source 100 for emitting visible light.
With respect to the planar light source, how to enhance the illumination brightness has become one of the key issues under research and development. Moreover, the method for generating the high voltage difference described above adopts the electrode pairs 130 to accumulate charges through the dielectric layer 140 thereon, thereby activating the discharge gas 180 to generate plasma. As such, the shape of the dielectric layer 140 may affect the output of the plasma as well as the efficiency for generating ultraviolet rays, thereby affecting the illumination brightness of the planar light source.
In view of the above, the invention is directed to a planar light source, wherein the shape of the dielectric layer facilitates high brightness of the planar light source.
The invention is further directed to a method for fabricating a planar light source, so as to fabricate a planar light source with high brightness.
The invention provides a planar light source, which includes a first substrate, a second substrate, a sealant, a plurality of first electrodes, a plurality of sets of first dielectric patterns, a phosphor layer, and a discharge gas. The second substrate is disposed above the first substrate. The sealant is disposed between the first and second substrates to form a cavity between the first substrate, the second substrate, and the sealant. The first electrodes are disposed on the first substrate, and the first dielectric patterns are disposed on the first substrate, wherein each set of the first dielectric patterns has at least two first striped dielectric patterns, and each of the first striped dielectric patterns covers one of the first electrodes. The edges of the top of each first striped dielectric pattern are raised in a peak shape. Moreover, the phosphor layer is disposed between the first striped dielectric patterns in the same set. The discharge gas is injected in the cavity.
In one embodiment of the invention, the aforementioned planar light source further includes a plurality of spacers disposed in the cavity between the first and second substrates.
In one embodiment of the invention, the aforementioned phosphor layer is further coated on the surfaces of the spacers.
In one embodiment of the invention, the aforementioned planar light source further includes another phosphor layer disposed on the second substrate opposite to the first electrode on the first substrate.
In one embodiment of the invention, the aforementioned planar light source further includes a reflecting layer disposed on the first substrate, and the first electrodes are disposed on the reflecting layer.
In one embodiment of the invention, the height of the edges of the top of the first striped dielectric layers, for example, falls in the range of 3 to 30 μm.
In one embodiment of the invention, the aforementioned discharge gas is selected from a group consisting of xenon, neon, argon, helium, and deuterium gas.
In one embodiment of the invention, the aforementioned planar light source further includes a plurality of second electrodes disposed on the second substrate and opposite to the first electrodes, wherein each of the second electrodes is located corresponding to a space between the adjacent first electrodes.
In one embodiment of the invention, the aforementioned planar light source further includes a plurality of second striped dielectric patterns disposed on the second substrate and covering the second electrodes.
In one embodiment of the invention, the edges of the top of each second striped dielectric pattern are raised in a peak shape with a height between 3 to 30 μm.
The invention provides a method for fabricating the planar light source. First, a first substrate is provided, and a plurality of first electrodes are formed on the first substrate, wherein the first electrodes are approximately parallel to each other. Next, a plurality of sets of first dielectric patterns are formed on the first substrate, wherein each set of first dielectric patterns includes at least two striped dielectric patterns, and each first striped dielectric pattern covers a first electrode. The edges of the top of each first striped dielectric pattern are raised in a peak shape. A phosphor layer is formed between the first striped dielectric patterns in the same set. Then, a second substrate is provided, and the first and second substrates are bound. At the same time, a discharge gas is injected into the discharge spaces.
In one embodiment of the invention, the above-mentioned method for fabricating the striped dielectric patterns includes, for example, first forming a dielectric material layer on the first substrate to cover the first electrode, wherein the dielectric material layer includes solvent, bonding agent, and dielectric ceramic powder. Next, the dielectric material layer is heated to a first temperature, and is continuously heated under the first temperature for a first duration. Then, the dielectric material layer is heated to a second temperature, and is continuously heated under the second temperature for a second duration. Afterward, the dielectric material layer is heated to a third temperature, and is continuously heated under the third temperature for a third duration.
In one embodiment of the invention, the aforementioned third temperature is higher than the second temperature, and the second temperature is higher than the first one.
In one embodiment of the invention, the above-mentioned first temperature is 150° C., and the first duration is 10 minutes.
In one embodiment of the invention, the above-mentioned second temperature is 400° C., and the second duration is 20 minutes.
In one embodiment of the invention, the above-mentioned third temperature is 540° C., and the third duration is 20 minutes.
In one embodiment of the invention, the method for fabricating the first striped dielectric pattern includes an etching process or a sandblasting process.
In one embodiment of the invention, the method for fabricating the planar light source includes, before binding the first and second substrates, forming a plurality of spacers between the first and second substrates.
In one embodiment of the invention, the method for fabricating the planar light source further includes, before forming the first electrodes, forming a reflecting layer on the first substrate, and then forming the first electrodes on the reflecting layer.
In one embodiment of the invention, the method for fabricating the planar light source further includes, before binding the first and second substrates, forming another phosphor layer on the second substrate.
According to the invention, the top of the dielectric layer of the planar light source is designed to be a peak shape. Therefore, when a voltage is applied, the tip of the dielectric layer may accumulate more charge compared with the conventional amount, thus causing a phenomenon of point discharge, increasing the plasma generated by the discharge gas and the ultraviolet light generated by activating the plasma. As such, the phosphor layer can emit visible light with high brightness by absorbing plenty of ultraviolet rays, thereby enhancing the illumination brightness of the planar light source.
In order to make the aforementioned and other features and advantages of the invention comprehensible, embodiments accompanied with figures are described in detail below.
First Embodiment
Next, as shown in
The method for forming the first striped dielectric pattern 240a will be illustrated below with the embodiments, but the invention will not be limited to these embodiments.
Referring to
Then, the dielectric material layer 246 is heated from the temperature T1 to the temperature T2, and is continuously heated under the temperature T2 for the duration t2, so as to evaporate the solvent 246b from the dielectric material layer 246. Herein, the temperature T2 is, for example, 400° C., and the duration t2 is, for example, 20 minutes. Afterward, the dielectric material layer 246 is heated from the temperature T2 to the temperature T3, and is continuously heated under the temperature T3 for the duration t3, so as to sinter the dielectric ceramic powder 246c from the dielectric material layer 246. Finally, the dielectric material layer 246 is cooled down to the normal temperature. Herein, the temperature T3 is, for example, 540° C., and the duration t3 is, for example, 20 minutes.
After the steps of heating, the formed first striped dielectric pattern 240a is shown in
Of course, those skilled in the art should understand that the first striped dielectric pattern 240a in
Referring to
Next, referring to
The planar light source fabricated according to the above embodiment will be illustrated below. Referring to
Particularly, each set of the first dielectric patterns 240 at least includes two first striped dielectric patterns 240a, and each of the first striped dielectric patterns 240a covers a first electrode 230. More particularly, the edges 244 of the top of each first striped dielectric pattern 240a are raised in a peak shape, so during the discharge process of the planar light source 200, the edges 244 of the top of the first striped dielectric pattern 240a can accumulate more charge compared with other parts, thereby causing the point discharge.
The first striped dielectric pattern will be illustrated below, but the invention will not be limited to this.
Referring to
In view of the above, the edges 244 of the top of the first striped dielectric pattern 240a are raised in a peak shape, which results in point discharge and thereby increasing the plasma generated during the discharge process, so as to increase the ultraviolet light generated by activating the plasma and further improve the brightness of the visible light emitted by the phosphor layer 250. As such, the illumination brightness of the planar light source 200 can be effectively enhanced.
Second Embodiment
In the embodiment, before the first substrate 210a and the second substrate 210b are bound, a plurality of second electrodes 232 are disposed on the second substrate 210b, wherein each of the second electrodes 232 is disposed in a discharge space 280 after the first substrate 210a and the second substrate 210b are bound. Next, a plurality of second striped dielectric patterns 242 are formed on the second substrate 210b,and each of the second striped dielectric patterns 242 covers a second electrode 232. Herein, the method for fabricating the second striped dielectric pattern 242 is identical or similar to that of the first striped dielectric pattern 240. As such, the edges 244 of the top of the second striped dielectric pattern 242 are raised in a peak shape. After that, the phosphor layer 252 disposed on the second substrate 210b is disposed on the sidewall of the second striped dielectric pattern 242.
In view of the above, as the edges of the top of the striped dielectric pattern in the planar light source are raised in a peak shape, a point discharge is induced, thereby enhancing the illumination brightness of the planar light source.
Though the invention has been disclosed above by the embodiments, it is not intended to limit the invention. Anybody skilled in the art can make some modifications and variations without departing from the spirit and scope of the invention. Therefore, the protecting range of the invention falls in the appended claims.
This application is a divisional application of and claims priority benefit of an U.S. application Ser. No. 11/308,967, filed on Jun. 1, 2006, now allowed. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
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Number | Date | Country | |
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Number | Date | Country | |
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Parent | 11308967 | Jun 2006 | US |
Child | 12545868 | US |