This application claims the right of priority based on Taiwan Patent Application No. 099115179 entitled “Thin Film Transistor Array Substrate and Method for Manufacturing the Same”, filed on May 12, 2010, which is incorporated herein by reference and assigned to the assignee herein.
1. Technical Field
The present invention relates to a transistor array substrate and in particular to a thin film transistor array substrate and method for manufacturing the same.
2. Related Art
Thin film transistor array substrates have been widely used in display applications such as liquid crystal display (LCD), electrophoretic display (EPD), and organic light emitting diode (OLED) display.
Taking the application in LCD for an example, a conventional thin film transistor array substrate includes a substrate, a metal gate layer formed on the substrate, a gate insulating layer formed on the metal gate layer, a source/drain layer formed on the gate insulating layer, an amorphous indium gallium zinc oxide (a-IGZO) layer formed on the source/drain layer, a protective layer formed on the a-IGZO layer and a pixel electrode formed on the protective layer.
However, in the above thin film transistor array substrate, the protective layer is directly formed on the a-IGZO layer, and because the protective layer is usually made of silicon oxide which easily cause the problem of leakage current. Thus, the application of such thin film transistor array substrate is limited.
Therefore, there is a desire to avoid producing the leakage current and improve the performance of the thin film transistor array substrate.
The present invention provides a thin film transistor array substrate which is capable of avoiding producing leakage current.
The present invention also provides a method for manufacturing the thin film transistor array substrate and the thin film transistor array substrate manufactured using the method can avoid producing leakage current.
A thin film transistor array substrate includes a substrate, a gate layer, a gate insulating layer, a source/drain layer, a patterned protective layer, an oxide semiconductor layer, a resin layer and a pixel electrode. The gate layer is disposed on the substrate. The gate insulating layer is disposed on the gate layer and the substrate. The source/drain layer is disposed on the gate insulating layer. The patterned protective layer is disposed on the source/drain layer and exposes a portion of the source/drain layer. The oxide semiconductor layer is disposed on the patterned protective layer and is electrically connected to the source/drain layer. The resin layer is disposed on the oxide semiconductor layer and covers the oxide semiconductor layer. The pixel electrode is disposed on the resin layer and is connected to the source/drain layer.
Another embodiment of the present invention also provides a method for manufacturing the thin film transistor array substrate. Firstly, a gate layer is formed on a substrate. Then, a gate insulating layer is formed on the gate layer and the substrate. After that, a source/drain layer is formed on the gate insulating layer. In succession, a patterned protective layer is formed on the source/drain layer. The patterned protective layer exposes a portion of the source/drain layer. Then, an oxide semiconductor layer is formed on the patterned protective layer and is electrically connected to the source/drain layer. After that, a resin layer is formed on the oxide semiconductor layer and covers the oxide semiconductor layer. Finally, a pixel electrode is formed on the resin layer and is connected to the source/drain layer.
In the thin film transistor array substrate of the present embodiment, the patterned protective layer is disposed on the source/drain layer and the oxide semiconductor layer is disposed on the patterned protective layer. Thus, the leakage current can be reduced or even be avoided. As a result, the performance of the thin film transistor array substrate is improved.
Other aspects, details, and advantages of the present corner joint are further described accompanying with preferred embodiments and figures as follows.
These and other features and advantages of the various embodiments disclosed herein will be better understood with respect to the following description and drawings, in which like numbers refer to like parts throughout, and in which:
In the present embodiment, the thin film transistor array substrate 100 can be used in electrophoretic display (EPD), but the application of the thin film transistor array substrate 100 is not limited only to EPD. Applying appropriate structure changes, the thin film transistor array substrate 100 according to various embodiments of the present invention can also be used in other display applications. For example. Referring to
Additionally, in the present embodiment, the thin film transistor array substrate 100 further includes a jumper portion 19 and a welding pad portion 20. The jumper portion 19 is connected between the welding pad portion 20 and other portion of the thin film transistor array substrate 100. The welding pad portion 20 is for electrically connecting to external components such as external circuit board or control circuit.
By the structure arrangement of the source/drain layer 13, the patterned protective layer 14 and the oxide semiconductor layer 15, that is, the patterned protective layer 14 is disposed on the source/drain layer 13 and the oxide semiconductor layer 15 is disposed on the patterned protective layer 14, the thin film transistor array substrate 100 can reduce the leakage current and improve the performance of the thin film transistor array substrate 100. In addition, because the jumper portion 19 and the welding pad portion 20 omit the resin layer, thus the problems of IC bonding and circuit corrosion can also be overcome.
A method for manufacturing the thin film transistor array substrate 100 will be described accompanying with figures as follows.
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As described above, in the thin film transistor array substrate of the present invention, the patterned protective layer is disposed on the source/drain layer and the oxide semiconductor layer is disposed on the patterned protective layer. Such arrangement can reduce or even eliminate the leakage current thereby improving the performance of thin film transistor array substrate. In addition, such arrangement also can avoid the problems of IC bonding and circuit corrosion. As a result, the performance of the thin film transistor array substrate is further improved.
The above description is given by way of example, and not limitation. Given the above disclosure, one skilled in the art could devise variations that are within the scope and spirit of the invention disclosed herein, including configurations ways of the recessed portions and materials and/or designs of the attaching structures. Further, the various features of the embodiments disclosed herein can be used alone, or in varying combinations with each other and are not intended to be limited to the specific combination described herein. Thus, the scope of the claims is not to be limited by the illustrated embodiments.
Number | Date | Country | Kind |
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099115179 | May 2010 | TW | national |