Referring to
The first substrate 21 is a thin film transistor (TFT) substrate, and includes a plurality of pixel electrodes 211 and a plurality of common electrodes 213. The second substrate 23 is a color filter (CF) substrate, and includes a transparent conductive layer 231. The sealant 27 is applied at a periphery of the first substrate 21, and is sandwiched between the first and second substrates 21, 23. The two substrates 21, 23 together with the sealant 27 cooperatively define a space therebetween, for accommodating the liquid crystal layer 25. The sealant 27 can be ultraviolet-curable sealant or heat-curable sealant or a combination of these, and includes a plurality of generally spherical conductive beads 270 mixed therein.
Referring also to
The conductive beads 270 mixed in the sealant 27 can electrically connect the common electrode 213 of the first substrate 21 with the transparent conductive layer 231 of the second substrate 23. Good electrical conductivity can be achieved by configuring a distribution density of the conductive beads 270 appropriately. Preferably, a proportion by weight of the conductive beads 270 relative to the sealant 27 is in the range from 0.5%˜5%. For example, the proportion by weight of the conductive beads 270 relative to the sealant 27 can be 1%.
Referring to
In step S1, the first substrate 21 is provided. The conductive beads 270 are mixed into the sealant 27. The sealant 27 having the conductive beads 270 is applied at a periphery of the first substrate 21 by a printing method or a coating method. Thereby, an accommodating space for receiving the liquid crystal layer 25 is defined. The accommodating space has a top opening.
In step S2, the liquid crystal layer 25 is formed. A plurality of spacers (not shown) are distributed in the accommodating space. Liquid crystal material (not shown) is then dropped into the accommodating space.
In step S3, the second substrate 23 is provided, and the first and second substrates 21, 23 are attached together. The second substrate 23 is first loosely attached onto the first substrate 21, and is then pressed. Thereby, the common electrode 213 of the first substrate 21 is electrically connected with the transparent conductive layer 231 of the second substrate 23 via the conductive beads 270 that are mixed in the sealant 27.
In step S4, the sealant 270 is cured, thereby forming the liquid crystal panel 2.
In summary, because the conductive beads 270 are mixed in the sealant 27, the conductive beads 270 do not influence a uniformity of a height of the sealant 27. Therefore, the liquid crystal panel 2 can provide a good quality display. Furthermore, the process of mixing the conductive beads 270 in the sealant 27 is simpler than a conventional process of applying conductive beads onto an outside of a sealant. Thus, the method for fabricating the liquid crystal panel 2 is simplified, and the liquid crystal panel 2 can have a reduced cost.
Referring to
It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the invention or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments of the invention.
Number | Date | Country | Kind |
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95124897 | Jul 2006 | TW | national |