This Application claims priority of Taiwan Patent Application No. 097108280, filed on Mar. 10, 2008, the entirety of which is incorporated by reference herein.
1. Field of the Invention
The invention relates to a method for fabricating a display, and more particularly to a method for fabricating a flexible display and apparatus and production process thereof.
2. Description of the Related Art
Flexible displays have unique advantages such as high impact resistance, light weight and flexibility. As such, in addition to researched applications in newly emerging products such as electronic paper, electronic tags, credit cards, scrolling displays and electronic advertising boards, further applications are being explored for usages in portable electronic products. As for flat panel displays, developmental trends continue to encompass larger areas, lighter weights and thinner frames. For flexible displays, the main developmental trend is for efficient and economic use of a plastic substrate in place of a glass substrate.
The conventional flexible display fabrication process, using a plastic substrate, requires steps such as film deposition, photolithography and etching. Also, the apparatuses for manufacturing conventional flexible displays are expensive, and the costs for research and development in this field of technology as well as fabrication are high. Furthermore, the conventional flexible display fabrication process is not a continuous process, thus making it difficult to increase manufacturing yields. As a result, with high costs and high product prices, expanding further application of the conventional flexible displays have been hindered.
Thus, development of a novel method for fabricating a flexible display is desirable.
One embodiment of the invention provides a method for fabricating a display comprising providing a substrate having a pixel area, forming a plurality of patterned first electrodes on the pixel area, forming a plurality of partitions on both sides of the patterned first electrodes, respectively filling in spaces between the partitions with various colored materials to cover the patterned first electrodes by a depositing process, and forming a cover on the partitions and the colored materials.
One embodiment of the invention provides an apparatus for producing a display comprising a cleaning system utilized to clean a substrate, a first electrode formation device adjacent to the cleaning system utilized to form a plurality of patterned first electrodes on the substrate, a first transfer tower adjacent to the first electrode formation device utilized to transfer the substrate with the patterned first electrodes along a first direction, a first printing device adjacent to the first transfer tower utilized to receive the substrate and form a plurality of partitions on both sides of the patterned first electrodes, a depositing device adjacent to the first printing device utilized to respectively fill various colored materials into spaces between the partitions, a second printing device or a second depositing device adjacent to the foregoing depositing device utilized to form a protective layer on the partitions and the colored materials, a second transfer tower adjacent to the second printing/depositing device utilized to transfer the substrate with the protective layer along a second direction, and a second electrode formation device adjacent to the second transfer tower utilized to receive the substrate and form a plurality of patterned second electrodes on the protective layer.
One embodiment of the invention provides a process for producing a display comprising utilizing a cleaning system to clean a substrate, utilizing a first electrode formation device to form a plurality of patterned first electrodes on the substrate, utilizing a first transfer tower to transfer the substrate with the patterned first electrodes, utilizing a first printing device to form a plurality of partitions on both sides of the patterned first electrodes, utilizing a depositing device to respectively fill various colored materials into spaces between the partitions, utilizing a second printing device or a second depositing device to form a protective layer on the partitions and the colored materials, utilizing a second transfer tower to transfer the substrate with the protective layer, and utilizing a second electrode formation device to form a plurality of patterned second electrodes on the protective layer.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawing, wherein:
The following description is of the mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is determined by reference to the appended claims.
According to an embodiment of the invention, a method for fabricating a display is shown in
Referring to
A plurality of patterned first electrodes 22 are formed on the substrate 20. In an embodiment, a transparent conductive material layer (not shown) is formed on the substrate 20 by a deposition process, for example, chemical vapor deposition (CVD). The transparent conductive material layer may comprise poly(3,4-ethylenedioxythiophene) (PEDOT). A patterned photoresist layer (not shown) is then formed on the transparent conductive material layer by a printing process to define subsequently formed first electrode areas. Next, the transparent conductive material layer uncovered by the patterned photoresist layer is removed by a conventional etching process to form the patterned first electrodes 22.
In an embodiment, a wet surface treatment process is performed on the substrate 20 to form a self-assembled membrane (SAM) thereon.
Referring to
In order to effectively alter the surface property of the substrate 20, S11 and S12 may be repeated to stack a plurality of bilayers composed of the anionic polyelectrolyte/cationic polyelectrolyte on the substrate 20 (S13). Next, the substrate 20 is dipped in the cationic polyelectrolyte solution to form a nano-level multi-layered self-assembled membrane on the surface of the substrate 20 (S14). In other embodiments, the nano-level multi-layered self-assembled membrane may also be formed by a printing, dispensing, dipping, or spray process or combinations thereof.
Next, a patterned catalyst material layer is formed on the multi-layered self-assembled membrane by a printing process, for example, ink-jet printing, laser printing, slot coating, imprinting, gravure printing or screen printing. After drying, an electroless plating process is performed to deposit a metal on the patterned catalyst material layer. The metal is reacted with the catalyst to form the patterned first electrodes 22.
After electroless plating, a conventional plating process may be performed to improve first electrode formation.
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According to an embodiment of the invention, a method for fabricating a display is shown in
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A plurality of patterned first electrodes 102 are formed on the first substrate 100. The methods and materials for forming the patterned first electrode 102 and 22 are similar.
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According to an embodiment of the invention, a method for fabricating a display is shown in
Referring to
A plurality of patterned first electrodes 302 are formed on the first substrate 300. The methods and materials for forming the patterned first electrode 302 and the patterned first electrode 22 shown in
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The first electrode formation device 602 or the second electrode formation device 608 may comprise a printing device, an etching system, a plating system, a plurality of reaction tanks or combinations thereof. The printing device may comprise an ink-jet printing apparatus, a laser printing apparatus, a slot coating apparatus, an imprinting apparatus, a gravure printing apparatus, a screen printing apparatus or combinations thereof. The first printing device 604 or the second printing device 606 may comprise an ink-jet printing apparatus, a laser printing apparatus, a slot coating apparatus, an imprinting apparatus, a gravure printing apparatus, a screen printing apparatus or combinations thereof.
The apparatus further comprises a first winding device W1 disposed between the first electrode formation device 602 and the first transfer tower 603 utilized to wind the substrate to form a winding substrate, a first unwinding device U1 disposed between the first transfer tower 603 and the first printing device 604 utilized to unwind the winding substrate to form a flat substrate, a second winding device W2 disposed between the second printing device 606 and the second transfer tower 607 utilized to wind the substrate to form a winding substrate, and the second unwinding device U2 disposed between the second transfer tower 607 and the second electrode formation device 608 utilized to unwind the winding substrate to form a flat substrate.
In an embodiment, the apparatus further comprises guiders (not shown) respectively disposed between the first transfer tower 603 and the first winding device W1 or between the first transfer tower 603 and the first unwinding device U1 and disposed between the second transfer tower 607 and the second winding device W2 or between the second transfer tower 607 and the second unwinding device U2 to direct the substrate 20 at the first transfer tower 603, the first winding device W1, the first unwinding device U1, the second transfer tower 607, the second winding device W2 or the second unwinding device U2 during winding and unwinding.
Additionally, the apparatus further comprises an unwinding device before the cleaning system 601 to unwind and transfer the substrate 20 to the cleaning system 601, and a receiving device behind the cutting device 609 to receive the display production.
In an embodiment, the fabrication method of a display is divided into three stages. The first stage comprises cleaning the substrate, treating the surface of the substrate, and patterning the first electrode formations. The second stage comprises forming a partition between the patterned first electrodes, filling colored materials between the partitions, and forming a protective layer on the partitions and the colored materials. The third stage comprises patterning a second electrode formation on the protective layer, and cutting the substrate. The three stages are distinct and separate from the windable substrate process. The invention, however, also provides a continuous process including the three stages.
In the invention, the display is fabricated under normal temperature and pressure, without a conventional photolithography process. Thus, substrate stress resulting from photolithography misalignment and high temperature can be avoided. Additionally, the transfer tower effectively improves production efficiency of the flexible display.
While the invention has been described by way of examples and in terms of embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
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Entry |
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Taiwan Patent Office, Office Action, Application Serial No. 097108280, Apr. 26, 2012, Taiwan. |
Taiwan Patent Office, Office Action, Patent Application Serial No. 097108280, Dec. 5, 2012, Taiwan. |
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