Referring to
The first substrate 102 and the second substrate 104 respectively comprise a common electrode 102a and a plurality of electrode lines 104c. The electrode lines 104c are positioned on the second substrate 104. In the present embodiment of the invention, the wires 106a and 106b are used as PSA manufacturing process wires, and are electrically connected to the common electrode 102a and the electrode lines 104c, respectively. The wires 106a are electrically connected to the common electrode 102a, for example, through Au or Ag balls (not illustrated). The LC layer 103 comprises a polymer layer 103a and a plurality of liquid crystal molecules 103b. Before the PSA manufacturing process is applied to the LCD sheet 100 of the present embodiment of the invention, the LC layer 103 comprises a plurality of monomers (not illustrated) and liquid crystal molecules 103b. The monomers are mixed with the liquid crystal molecules 103b. Next, a cross-voltage Vx is provided via the input ends 112a and 112b to apply a voltage to the common electrode 102a and the electrode line 104c to drive the liquid crystal molecules 103b of the LC layer 103. After the exposure by ultra-violet light, the monomers are polymerized to form a polymer layer 103a on the surface of the first substrate 102 and the second substrate 104. The polymer layer 103a contacts the LC layer 103 and provides a pre-tilt angle to the liquid crystal molecules 103b.
After the LCD sheet 100 is divided along the cutting line L, several LCD panels 200 are obtained. Referring to
The ESD protection device 108 is electrically connected to the wires 106a and 106b to prevent external electro-static charges from entering the LCD panel 200 via the wires 106a and 106b extended to the edge of the substrate 204, lest the internal circuit of the LCD panel 200 might be damaged by incoming electro-static charges.
The LCD panel 200 comprises a plurality of electrode lines 104c disposed on the second substrate 204 in parallel and electrically connected to the wire 106b. The LCD panel 200 further comprises a plurality of scan lines 204d and data lines 204e, and ESD protection devices 210a and 210b. The scan lines 204d are disposed on the second substrate 204 in parallel and are also disposed between two neighboring electrode lines 104c in parallel. The scan lines 204d are electrically connected to the ESD protection device 210b. The data lines 204e are also disposed on the second substrate 204 in parallel and criss-cross with the electrode line 104c and the scan lines 204d. The data lines 204e are electrically connected to the ESD protection device 210a. A pixel is defined by two neighboring scan lines 204d and two neighboring data lines 204e. Each pixel comprises a TFT, a pixel electrode and a storage capacitor. The three ends of the TFT are corresponding to and electrically connected to a data line on a pixel edge, a scan line on a pixel edge, and the pixel electrode, respectively. The ESD protection devices 210a and 210b are respectively used to prevent the data line 204e and the scan lines 204d from being damaged by incoming electro-static charges.
Referring to
Thus, the LCD sheet of the present embodiment of the invention and the LCD panel effectively resolves the high cost problem of conventional PSA process which is applicable to only one LCD panel at a time. Moreover, the electro-static charges generated at the LCD panel edge are effectively prevented from entering the LCD panel via the wire, such that the LCD panel is less likely to be damaged by the incoming electro-static charges during the manufacturing process, and the yield rate in the production of LCD panel is greatly increased.
Referring to
When the electro-static charges are discharged and generate a positive electro-static current, the positive electro-static current enters the LCD panel 200 by passing through the wires 410a and 402a sequentially. Meanwhile, the structure of the single metal layer of the wire 402a will break due to the high density of the current flowing through the cross-section. When the electro-static charges are discharged and generate a reverse electro-static current, the reverse electro-static current is dissipated from the LCD panel 200 by passing through the wires 406a and 402a sequentially. Meanwhile, the structure of the single metal layer of the wire 402a will break due to the high density of the current flowing through the cross-section. The broken wire 402a avoids the generation of electro-static current, hence achieving electro-static discharge protection.
The present embodiment of the invention is exemplified by the situation that the electro-static current flows through the wires 410a, 402a and 406a. However, the situation that the electro-static current flows through the wires 410b, 402b and 406b can be obtained by the same way.
Referring to
Referring to
When the electro-static charges are discharged and generate a positive electro-static current, the positive electro-static current sequentially flows through the wires 610a, 606a, and the diodes D2 and D6 to be inputted to a common electrode Vcom. When the external electro-static charges are discharged and generate a reverse electro-static current, the positive electro-static current starts from the common electrode Vcom, and sequentially flows through the diodes D5 and D1, and the wires 606a and 610a to be outputted. When the electro-static charges are discharged, the diode array 602a of the present embodiment of the invention effectively discharges the positive electro-static current and the reverse current via another path, such that the electro-static current is prevented from entering the internal circuit of the LCD panel 200, and the electro-static discharge protection is achieved. The present embodiment of the invention is exemplified using the example of the diode array 602a and the diode D1˜D8 thereof. However, the structure of the diode array 602b and the electro-static discharge protection achieved thereby can be obtained in the same way as the diode array 602a does.
Referring to
When the electro-static charges are discharged and generate a positive electro-static current, the positive electro-static current sequentially flows through the wires 710a, 706a, the diodes D1 and D2 to be inputted to a common electrode Vcom. When the external electro-static charges are discharged and generate a reverse electro-static current, the positive electro-static current starts from the common electrode Vcom and sequentially flows through the diodes D4, D3, the wires 706a and 710a to be outputted. When the electro-static charges are discharged, the diode array 702a of the present embodiment of the invention effectively discharges the positive electro-static current and the reverse current via another path, such that the electro-static current is prevented from entering the internal circuit of the LCD panel 200, and the electro-static discharge protection is achieved. The present embodiment of the invention is exemplified using the example of the diode array 702a and the diodes D1˜D4 thereof. However, the structure of the diode array 702b and the electro-static discharge protection achieved thereby can be obtained in the same way as the diode array 702a does.
Referring to
When the electro-static charges are discharged and generate a positive electro-static current, the positive electro-static current sequentially flows through the wires 810a, 806a, and the diodes D1˜D3 to be outputted to a common electrode Vcom. When the external electro-static charges are discharged and generate a reverse electro-static current, the positive electro-static current starts from the common electrode and sequentially flows through the diodes D4˜D6 and the wires 806a and 810a to be outputted. When the electro-static charges are discharged, the diode array 802a of the present embodiment of the invention effectively discharges the positive electro-static current and the reverse current via other path, such that the electro-static current is prevented from entering the internal circuit of the LCD panel 200, and the electro-static discharge protection is achieved. The present embodiment of the invention is exemplified using the example of the diode array 802a and the diodes D1˜D6 thereof. However, the structure of the diode array 802b and the electro-static discharge protection achieved thereby can be obtained in the same way as the diode array 802a does.
The above embodiments are exemplified by the second substrate 104 having two panel regions 104b. However, the TFT substrate 204 of the above embodiments can comprise one, three or more than three panel regions 104b. The first to the sixth embodiments are respectively exemplified by various circuit structures of ESD protection devices. However, the structure of the ESD protection device 108 of the invention is not limited to the structure of the ESD protection device disclosed above, and other structures also would do.
In above embodiments, the wires 106a, 106b, 110a and 110b electrically connected to the common electrode 102a and the electrode lines 104c respectively are disposed in the second substrate 104. However, the TFT substrate 204 of the above embodiments can further comprise a wire electrically connected to the scan lines 204d and the data line 204e, such that the voltage is applied via the wire electrically connected to the scan lines 204d, the data lines 204e and the electrode lines 104c to perform the PSA manufacturing process. The LCD sheet 100 of the above embodiments can further provide a cross-voltage to the two ends of the LC layer 103 via the PSA wire electrically connected to the electrode lines 104c, the scan lines 204d and the data lines 204e. The LCD sheet 100 of the above embodiments and the LCD panel 200 thereof achieve ESD protection by disposing the wires on an ESD protection device. Thus, any designs for protecting the internal circuit of LCD panel 200 from the interference of external electro-static charges by disposing an ESD protection device on the wire extended from the non-panel region 104a to the panel region 104b are within the scope of the technology of the invention.
According to the LCD sheet disclosed in the above embodiments of the invention, a wire is disposed on the second substrate, such that the PSA manufacturing process is applicable to multiple LCD panels of the LCD sheet. Thus, the LCD sheet of the invention effectively resolves the problem of incurring high manufacturing cost to the conventional PSA process which is applicable to only one LCD panel at a time.
According to the LCD sheet disclosed in the above embodiments of the invention, an electro-static discharge (ESD) protection device is further disposed on the wire of the second substrate, such that when the LCD sheet is divided into multiple LCD panels, and external electro-static charges are effectively prevented from entering the LCD panels via the wire extended to the LCD panels edge lest the internal circuit of the LCD panels might be damaged. Thus, the LCD sheet disclosed in above embodiments of the invention has the advantages of effectively preventing the LCD panels from being damaged by external electro-static charges during the manufacturing process, largely increasing the yield rate in the production of LCD panels, and further reducing LCD panel manufacturing cost.
While the invention has been described by way of example and in terms of a preferred embodiment, it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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95130148 | Aug 2006 | TW | national |