This application is the National Stage of PCT/CN2013/089449 filed on Dec. 14, 2013, which claims priority under 35 U.S.C. 5119 of Chinese Application No. 201310217850.2 filed on Jun. 3, 2013, the disclosure of which is incorporated by reference.
Embodiments of the present disclosure relate to the liquid crystal display (LCD) manufacturing field, in particular to a method for manufacturing a display panel.
With development of the LCD technology, thin-film transistor liquid crystal display (TFT-LCD) prevails in the market for its advantages, such as high quality, low power consumption, non-radiation and the like. An LCD mainly comprises a color filter substrate and an array substrate; liquid crystals are filled between the color filter substrate and the array substrate; and a sealant is adopted to seal peripheries of the liquid crystal display. In the process of manufacturing the LCD, the cell-assembling process of the LCD is an important step in the process of manufacturing the LCD, and comprises: A. coating a sealant on a first glass substrate; B. dripping liquid crystals onto a second glass substrate; C. cell-assembling the first glass substrate and the second glass substrate; and D utilizing ultraviolet (UV) light to cure the sealant after cell assembling. During the processes, viscous sealant is coated on the peripheries of a liquid crystal cell; an array substrate and a color filter substrate can be adhered to each other after the sealant is cured; and the leakage of the liquid crystals filled between the two substrates will not occur.
The technical problem to be solved by the embodiment of the present disclosure is to reduce the influence of UV light for curing a sealant on effective display area of a display in the process of manufacturing the display.
In order to settle the technical problem, embodiments of the present disclosure provide a method for manufacturing a display panel. The display panel comprises an array substrate and a color filter substrate which are connected with each other by means of cell assembling. Liquid crystals are filled between the array substrate and the color filter substrate which are connected with each other by a sealant, the method comprises:
coating the sealant to peripheries of one surface of one substrate of the array substrate and the color filter substrate, the surface being opposite to the other substrate;
forming a light shielding layer in an area encircled by the sealant on one surface of the array substrate away from the color filter substrate;
irradiating the array substrate provided with the light shielding layer and curing the sealant; and
removing the light shielding layer.
The light shielding layer is configured to shield an area encircled by the sealant from light during the process of irradiating the array substrate.
According to one embodiment of the present disclosure, UV light is used to cure the sealant.
A coverage area of the light shielding layer comprises a first coverage area and a second coverage area, wherein the first coverage area corresponds to an effective display area of the array substrate, and the second coverage area corresponds to an area between the effective display area and the sealant.
The coverage area of the light shielding layer corresponds to an area on the back side of the array substrate between the sealant and an effective display area.
The light shielding layer is made of black positive photoresist, black negative photoresist or an opaque metal material.
The process of forming the light shielding layer includes the following steps:
According to one embodiment of the present disclosure, the light shielding layer is contiguous to the sealant, or the light shielding layer overlaps the sealant.
In the method for manufacturing the display panel, provided by the present disclosure, in the process of manufacturing the display panel, the light shielding layer is disposed in the area encircled by the sealant on the back side of the array substrate to effectively shield the effective display area from UV light in the process of sealant curing, so that the phenomenon that the liquid crystal molecules in the effective display area are damaged by the UV light can be effectively avoided and the liquid crystal molecules in the effective display area are always kept from being irradiated in the process of sealant curing, and hence the display effect and the yield of the display panel can be improved and the narrow-frame design of the display can be favorably achieved.
In order to clearly illustrate the technical solution of the embodiments of the disclosure, the drawings of the embodiments will be briefly described in the following; it is obvious that the described drawings are only related to some embodiments of the disclosure and thus are not limitative of the disclosure.
In order to make objects, technical details and advantages of the embodiments of the disclosure apparent, the technical solutions of the embodiment will be described in a clearly and fully understandable way in connection with the drawings related to the embodiments of the disclosure. It is obvious that the described embodiments are just a part but not all of the embodiments of the disclosure. Based on the described embodiments herein, those skilled in the art can obtain other embodiment(s), without any inventive work, which should be within the scope of the disclosure.
A first embodiment of the present disclosure provides a method for manufacturing a display panel.
The method for manufacturing the display panel, according to the embodiment of the present disclosure, comprises the following steps:
S1: forming a light shielding layer in an area within sealant on the back side of an array substrate before curing sealant.
The area encircled by the sealant comprises an effective display area and areas between the effective display area and the sealant. One side of the array substrate close to the color filter substrate is the front side and one side of the array substrate away from the color filter substrate is the back side. The light shielding layer is usually directly coated on the back side of the array substrate. For instance, the light shielding layer may be made of black positive photoresist, black negative photoresist or an opaque metal material. The light shielding layer is configured to shield the area encircled by the sealant from light during the process of curing sealant, namely when the array substrate provided with the light shielding layer is irradiated, and covers the entire area encircled by the sealant. The light shielding layer is contiguous to the sealant, or the light shielding layer slightly overlaps the sealant.
The light shielding layer has different thicknesses depending on materials of which it is made. If the light shielding layer is made of a black positive photoresist or a black negative photoresist, the thickness of the light shielding layer is approximately 0.5 to 5 μm; and if the light shielding layer is made of a metal material, the thickness of the light shielding layer is 0.2 to 0.4 μm. Optional metal materials comprise molybdenum, aluminum, copper, and etc. No matter which material is adopted to form the light shielding layer, the light shielding layer is used to shield UV light, and the thickness of the light shielding layer may exceed the above range. The factors of the UV light such as the intensity and the irradiation time may be set according to photo initiators used in the sealant. As all the above contents are well known to those skilled in the art, no further description will be given here.
S2: irradiating the array substrate provided with the light shied layer to complete the process of curing sealant.
In the process of curing sealant, UV light is used to irradiate the array substrate provided with the light shielding layer. The UV light irradiates the array substrate in a direction which is not perpendicular to the array substrate, so as to cure the sealant. The UV light at positions corresponding to sealant passes through the array substrate 1 and irradiates the sealant 2 so as to cure the sealant; the UV light irradiating areas not provided with the sealant, namely the effective display area 4 and areas between the effective display area 4 and the sealant 2, is shielded by the light shielding layer 3; and hence the phenomenon that characteristics of liquid crystals are changed as liquid crystal molecules in the effective display area 4 are damaged by the UV light can be effectively avoided, and the liquid crystal molecules in the effective display area 4 are always kept from being irradiated. Therefore, the display effect and the yield of the display panel can be improved.
S3: removing the light shielding layer after curing sealant.
A relevant strippant may be used for stripping the light shielding layer according to materials of which the light shielding layer is made. As the content belongs to the prior art, no further description will be given here.
In the process of manufacturing the display panel, the sealant must be irradiated by the UV light so as to be cured. In the prior art, in the process of curing sealant, the UV light tends to irradiate liquid crystals on the peripheries of the effective display areas of the array substrate, which caused the characteristics of the liquid crystals changed. In the embodiment, the light shielding layer is disposed in the area encircled by the sealant on the back side of the array substrate and replace the mask in the prior art, so that there is no gap between the light shielding layer and the array substrate and the horizontal distance between the light shielding layer and the sealant gets smaller, and hence the phenomenon that characteristics of the liquid crystals in the effective display area are changed due to being irradiated by the UV light can be avoided.
The second embodiment will be described below on the basis of the description of the first embodiment.
Furthermore, in the method for manufacturing the display panel, according to the embodiment, as illustrated in
In the method for manufacturing the display panel, provided by the embodiment of the present disclosure, the coverage area of the light shielding layer 3 may also be, as illustrated in
As illustrated in
This embodiment will be described below on the basis of the first embodiment.
In the method for manufacturing the display panel, according to the embodiment, the process of forming a light shielding layer comprises the following steps:
step A1: forming a light shielding layer film on the back side of the array substrate; and
step A2: forming patterns comprising the light shielding coverage areas by means of a patterning process.
A mask is provided corresponding to the structure of the sealant. The mask is used for performing photolithography to the light shielding layer film on the back side of the entire array substrate to form the patterns comprising the first coverage area and the second coverage area.
In this embodiment, the light shielding layer is formed before the process of manufacturing the array substrate. At first, the light shielding layer film is formed on the back side of the array substrate; subsequently, the light shielding layer mask is designed according to the pattern of the sealant to be formed and the structure of the effective display area; the light shielding layer is subjected to exposure by photolithography; and hence the light shielding layer can be obtained in the area encircled by the sealant on the back side of the array substrate. By utilizing photolithography, the light shielding layer may be disposed contiguous to the sealant, or the light shielding layer may slightly overlap the sealant. In this manner, the horizontal distance d1 between the mask and the sealant, as illustrated in
After manufacturing the front side of the array substrate, the side view of the manufactured array substrate is as illustrated in
In the embodiment, the light shielding layer is formed on the back side of the array substrate by photolithography, so that the alignment accuracy of the light shielding layer is in an order of nanometers. But the alignment accuracy of the mask in the prior art is only 0.1 millimeter. The method according to the present disclosure can greatly improve the alignment accuracy and reduce the horizontal distance between the light shielding layer and the sealant, and hence effectively protect the liquid crystals in the effective display area, improve the display effect and the yield of the display panel, and facilitate manufacturing narrow-frame display devices.
The foregoing are merely exemplary embodiments of the invention, but are not used to limit the protection scope of the invention. The protection scope of the invention shall be defined by the attached claims.
Number | Date | Country | Kind |
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2013 1 0217850 | Jun 2013 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2013/089449 | 12/14/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/194634 | 12/11/2014 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20030147040 | Park | Aug 2003 | A1 |
20040090586 | Choo | May 2004 | A1 |
20050030471 | Liou | Feb 2005 | A1 |
20060043318 | Kodera | Mar 2006 | A1 |
20110222012 | Park | Sep 2011 | A1 |
20130078552 | Lee et al. | Mar 2013 | A1 |
20140139798 | Xu | May 2014 | A1 |
20150226891 | Song | Aug 2015 | A1 |
Number | Date | Country |
---|---|---|
102331637 | Jan 2012 | CN |
102967966 | Mar 2013 | CN |
103018968 | Apr 2013 | CN |
103197472 | Jul 2013 | CN |
103293743 | Sep 2013 | CN |
WO 2014153879 | Oct 2014 | WO |
Entry |
---|
Second Chinese Office Action of Chinese Application No. 201310217850.2, mailed May 6, 2015 with English translation. |
Chinese Office Action of Chinese Application No. 201310217850.2, mailed Feb. 11, 2015 with English translation. |
International Search Report, International Preliminary Report on Patentability and Written Opinion of the International Searching Authority of PCT/CN2013/089449 in Chinese, mailed Mar. 20, 2014. |
English Translation of the International Search Report of PCT/CN2013/089449 published in English on Dec. 11, 2014. |
English translation of the International Preliminary Report on Patentability and Written Opinion of the International Searching Authority of PCT/CN2013/089449, issued Dec. 8, 2015. |
Number | Date | Country | |
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20150309344 A1 | Oct 2015 | US |