This application claims the priority benefit of Taiwan application serial no. 95101884, filed on Jan. 18, 2006. All disclosure of the Taiwan application is incorporated herein by reference.
1. Field of Invention
The present invention relates to a flat lamp and a cathode thereof and a method for fabricating the cathode, and more particularly, to a field emission flat lamp and a fabricating method thereof and a cathode plate and fabricating method thereof.
2. Description of Related Art
The luminescence principle of the field emission display is to absorb electrons in the top end of materials by utilizing the electric field in a vacuum environment, and the field emission electrons from the cathode plate accelerate to be absorbed and bombard to the fluorescent powder of the anode due to the positive voltage over the anode, thus the luminescence occurs. The cathode plate is used as the field electron emission source, and the anode plate is used as the light-emitting source. The luminescence occurs with the electrons emitted from the cathode plate bombarding to the fluorescent layer of the anode plate. When the field emission display is used as the backlight source of other elements, it is a flat luminous element with a more preferred light uniformity compared with the cold cathode fluorescent lamp (CCFL) or the light emitting diode (LED).
However, the emission layer 116 cannot be precisely aligned with the cathode structures 114 and formed thereon with fixed line width through the screen printing, but varies irregularly just like the one shown in
Since the light source uniformity required by the current displays is of an extremely high standard, if the conventional field emission flat lamp is to be used as a light source for displays, a diffusion film is required to improve the light uniformity, which will increase the assembling complexity of displays and further increase the cost of raw materials and the assembling process. Thus, the conventional field emission flat lamp is not suitable for being widely applied in the market.
An object of the present invention is to provide a cathode plate with an advantage that the emission layer can be precisely positioned.
Another object of the present invention is to provide a field emission flat lamp with an advantage of desirable light uniformity.
Still another object of the present invention is to provide a method for fabricating the cathode plate, which can solve the problem of poor light uniformity resulting from imprecise positioning of the emission layer.
Yet another object of the present invention is to provide a method for fabricating the field emission flat lamp, which can solve the problem of poor light uniformity resulting from imprecise positioning of the emission layer.
The present invention provides a cathode plate, which includes a substrate, a plurality of cathode structures, a plurality of gate structures, and an emission layer. The cathode structures and the gate structures are disposed on the substrate and in a strip-form. The gate structures and the cathode structures are parallel interlaced with one another. Each of the cathode structures has at least one groove, and the emission layer is disposed in the grooves.
The present invention further provides a field emission flat lamp, which includes a cathode plate, an anode plate, and a sealant. The cathode plate includes a first substrate, a plurality of cathode structures, a plurality of gate structures, and an emission layer. The cathode structures and the gate structures are disposed on the first substrate and in a strip-form. The gate structures and the cathode structures are parallel interlaced with one another. Each of the cathode structures has at least one groove, and the emission layer is disposed in the grooves. The sealant is disposed between and seals the anode plate and the cathode plate.
In an embodiment of the above field emission flat lamp and the cathode plate, the (first) substrate is exposed by the grooves, and the substrate is in contact with the emission layer.
In an embodiment of the above field emission flat lamp and the cathode plate, the grooves are strip shaped, and they are arranged in parallel with the cathode structures.
In an embodiment of the above field emission flat lamp and the cathode plate, each of the cathode structures has a plurality of spot-shaped grooves. Moreover, the grooves are arranged in rows along the extending direction of the cathode structures, for example. In addition, the shape of the groove seen from the top can be round, semi-round, semi-ellipse, or ellipse. Alternatively, it also can be in the shape of a polygon, such as a rectangle, triangle, or quadrilateral.
In an embodiment of the above field emission flat lamp, the anode plate includes a second substrate, an anode layer, and a fluorescent layer, wherein the anode layer is disposed on a surface of the second substrate opposite to the cathode plate, and the fluorescent layer is disposed on the anode layer.
The present invention further provides a method for fabricating the cathode plate, which includes: providing a substrate; and forming a plurality of cathode structures and a plurality of gate structures on the substrate, wherein the cathode structures and the gate structures are in a strip-form, and the cathode structures and the gate structures are parallel interlaced with one another, and each of the cathode structures has at least one groove; and forming an emission layer in the grooves.
The present invention further provides a method for fabricating the field emission flat lamp, which includes: providing a cathode plate, with the same fabricating method as that mentioned above; providing an anode plate; and sealing the anode plate and cathode plate with a sealant, wherein the cathode structures, the gate structures, and the emission layer are located between the anode plate and the cathode plate.
In an embodiment of the above method for fabricating the field emission flat lamp and the cathode plate, the process for forming the cathode structures and the gate structures includes screen printing. Alternatively, the process for forming the cathode structures and the gate structures can be a thin film deposition process and a photolithography and etching process.
In an embodiment of the above method for fabricating the field emission flat lamp and the cathode plate, the process for forming the emission layer includes filling an emission layer material on the cathode structures; and removing the emission layer material outside the grooves to form the emission layer. Moreover, the process for filling the emission layer material is, for example, screen printing. In addition, the emission layer material can be activated while removing the emission layer material outside the grooves.
In an embodiment of the above method for fabricating the Field emission flat lamp and the cathode plate, the process for forming the emission layer includes disposing a catalyst in the grooves; and forming the emission layer in the grooves through the catalyst.
To sum up, as for the field emission flat lamp and the fabricating method thereof and the cathode plate and the fabricating method thereof provided by the present invention, the cathode structures are provided with grooves, such that the emission layer can be precisely positioned in the grooves of the cathode structures to improve the light uniformity of the field emission flat lamp.
In order to make the aforementioned and other objects, features and advantages of the present invention comprehensible, preferred embodiments accompanied with figures are described in detail below.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Referring to
Referring to
When the field emission flat lamp 200 is used as a backlight source for displays (not shown), the cathode plate 300 serves as a light exiting surface and is disposed towards the display panel (not shown), thus preventing the liquid crystal display panel from being influenced by the high heat generated on anode plate 210 after the electrons bombarding to the fluorescent powder. When the field emission flat lamp 200 is configured in the way as mentioned above, the substrate 212 can employ transparent or nontransparent materials, and the anode layer 214 can employ electrical conductive materials with high light reflectance, such as Ag, Al . . . etc., to improve light utility efficiency. Additionally, since the reflected light has to transmit through the cathode plate 300, the substrate 310 is preferably made of transparent materials, and the cathode structures 320 and the gate structures 330 are arranged parallel to one another in strip-form, so as to improve the light transmittance. However, when the field emission flat lamp 200 is not disposed in displays in the way as mentioned above, the substrate 212 and the substrate 310 can be modified to use transparent or nontransparent materials.
In a case that the application of the cathode plate 300 is not restricted, the material of the substrate 310 can be transparent materials, such as glass, or other, nontransparent materials. The material of the cathode structures 320 and the gate structures 330 is conductive material, such as Ag or other suitable metal or non-metal material. The material of the emission layer 340 is, for example, a carbon nanotube (CNT) or other materials suitable for the field electron emission source. The CNT can be formed through arc evaporation, laser ablation of graphite, or chemical vapor deposition (CVD).
The method for fabricating the cathode plate according to an embodiment of the present invention will be described below with reference to the drawings, and the drawings only depict a part of the cathode plate. Referring to
Moreover, the cathode structures 620 and the gate structures 630 as shown in
In addition, the method for forming the emission layer 640 as shown in
What has been described above is the method for fabricating the cathode plate according to an embodiment of the present invention. The present invention also provides a method for fabricating a field emission flat lamp. Herein, in an embodiment of the method for fabricating the field emission flat lamp, the cathode plate 300 shown in
It should be noted that the cathode plate of the present invention is not limited to be applied in field emission flat lamps, and when being applied to field emission displays, it can improve the display quality thereof as well.
To sum up, as for the field emission flat lamp and the fabricating method thereof, and the cathode plate and the fabricating method thereof provided by the present invention, since the cathode structures are designed and provided with grooves thereon, the emission layer can be positioned precisely in the grooves of the cathode structures, such that the distance between the emission layers on two adjacent cathode structures is fixed. Therefore, the field-emission electric field generated by the cathode plate together with the anode plate is uniformly distributed, and the light uniformity of the field emission flat lamp will be dramatically improved. In addition, in field emission flat lamps with desirous light uniformity, the diffusion film is no longer required for improving the light uniformity, such that the assembling complexity of the display is decreased, the cost of raw materials and the assembling process is reduced, which makes it suitable for being widely used in the market.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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95101884 | Jan 2006 | TW | national |