The present invention relates to a field of a liquid crystal display technology, and more particularly to a liquid crystal display (LCD) panel and a display apparatus using the same.
Liquid crystal displays (LCDs) have been widely applied in electrical products. Currently, most of LCDs are backlight type LCDs which comprise a liquid crystal panel and a backlight module. The liquid crystal panel is composed of two transparent substrates and a liquid crystal sealed there-between.
At present, a vertical alignment (VA) technology has been developed for LCD panels. For example, a polymer stabilized vertical alignment (PSVA) type liquid crystal display panel which is made using a polymer-stabilized alignment (PSA) process, can have some advantages, such as wide viewing angle, high aperture ratio, high contrast and simple process.
In the PSVA type LCD, reactive monomers can be doped in the liquid crystal between the two transparent substrates and mixed with liquid crystal molecules, wherein the a polyimide (PI) is coated on the surface of each of the transparent substrates to be an alignment layer. Subsequently, when applying a voltage and irradiating an ultraviolet (UV) light to the two transparent substrates, a phase separation arises in the reactive monomers and the liquid crystal molecules, and a polymer is formed on the alignment layer of the transparent substrate. The liquid crystal molecules are oriented along a direction of the polymer due to the interaction between the polymer and the liquid crystal molecules. Therefore, the liquid crystal molecules between the transparent substrates can have a pre-tilt angle.
However, currently, a color shift problem is likely to occur in the VA type LCD, hence deteriorating the display quality of the LCD. For improving the above-mentioned color shift problem, a pixel structure of the LCD panel may be varied, but the variation of the pixel structure may result in a reduction of a transmittance of the LCD panel.
As a result, it is necessary to provide an LCD panel and a display apparatus using the same to solve the problems existing in the conventional technologies, as described above.
The present invention provides an LCD panel and a display apparatus using the same to solve the color shift problem and the transmittance problem existing in the conventional VA type LCD.
A primary object of the present invention is to provide a liquid crystal display panel, and the liquid crystal display panel comprises: a first substrate comprising a first electrode; a second substrate comprising a second electrode, wherein each of the pixels comprises a main pixel region and a sub-pixel region, and the second electrode has a pixel electrode structure, and the pixel electrode structure comprises a trunk portion and a plurality of branch portions, and an included angle between the trunk portion and the branch portions is of 45 degrees in the main pixel region, and the sub-pixel regions comprise first sub-pixel regions and second sub-pixel regions, and in each of the sub-pixel regions, a predetermined angle between the trunk portion and the branch portions is less or greater than 45 degrees, and the predetermined angle is different in the first sub-pixel regions and the second sub-pixel regions, respectively; a liquid crystal layer formed between the first substrate and the second substrate, and the liquid crystal layer comprises reactive monomers liquid crystal molecules; a first polarizer disposed at an outer side of the first substrate; a second polarizer disposed at an outer side of the second substrate; and a half wave (λ/2) pattern retarder film bonded on an outer surface of the first substrate or the second substrate, wherein the λ/2 pattern retarder film comprises a plurality of λ/2 retarder rows and a plurality of zero wave retarder rows, and the zero wave retarder rows are positioned to the main pixel regions, and the λ/2 retarder rows are positioned to the sub-pixel regions.
In one embodiment of the present invention, the sub-pixel regions further comprise third sub-pixel regions, and the predetermined angle in the third sub-pixel regions is different to the predetermined angles in the first sub-pixel regions and the second sub-pixel regions.
In one embodiment of the present invention, the sub-pixel regions further comprise fourth sub-pixel regions, and the predetermined angle in the fourth sub-pixel regions is different to the predetermined angles in the first sub-pixel regions, the second sub-pixel regions and the third sub-pixel regions.
In one embodiment of the present invention, the λ/2 pattern retarder film is positioned between the second substrate and the second polarizer.
In one embodiment of the present invention, the predetermined angle (θ2) is less than 45 degrees, and there is an included angle (ψ1) between slow axes of the λ/2 pattern retarder film and absorption axis of the second polarizer, and the predetermined angle (θ2) and the included angle (ψ1) satisfy the below equations: ψ1+θ2=45°; and 90−θ2>2ψ1.
In one embodiment of the present invention, the λ/2 pattern retarder film is positioned between the first substrate and the first polarizer.
In one embodiment of the present invention, the predetermined angle (θ2) is greater than 45 degrees, and there is an included angle (ψ2) between slow axes of the λ/2 pattern retarder film and absorption axis of the first polarizer, and the predetermined angle (θ2) and the included angle (ψ1) satisfy the below equations: ψ2+θ2=135°; and 2(90−θ2)>ψ2.
Another object of the present invention is to provide a liquid crystal display panel, and the liquid crystal display panel comprises: a first substrate comprising a first electrode; a second substrate comprising a second electrode and a plurality of pixels, wherein each of the pixels comprises a main pixel region and a sub-pixel region, and the second electrode has a pixel electrode structure, and the pixel electrode structure comprises a trunk portion and a plurality of branch portions, and an included angle between the trunk portion and the branch portions is of 45 degrees in the main pixel region, and in each of the sub-pixel regions, a predetermined angle between the trunk portion and the branch portions is less or greater than 45 degrees; a liquid crystal layer formed between the first substrate and the second substrate; a first polarizer disposed at an outer side of the first substrate; a second polarizer disposed at an outer side of the second substrate; and a λ/2 pattern retarder film bonded on an outer surface of the first substrate or the second substrate, wherein the λ/2 pattern retarder film comprises a plurality of λ/2 retarder rows and a plurality of zero wave retarder rows, and the zero wave retarder rows are positioned to the main pixel regions, and the λ/2 retarder rows are positioned to the sub-pixel regions.
In one embodiment of the present invention, the sub-pixel regions comprise first sub-pixel regions and second sub-pixel regions, and the predetermined angle is different in the first sub-pixel regions and the second sub-pixel regions, respectively.
In one embodiment of the present invention, the sub-pixel regions further comprise third sub-pixel regions, and the predetermined angle in the third sub-pixel regions is different to the predetermined angles in the first sub-pixel regions and the second sub-pixel regions.
In one embodiment of the present invention, the sub-pixel regions further comprise fourth sub-pixel regions, and the predetermined angle in the fourth sub-pixel regions is different to the predetermined angles in the first sub-pixel regions, the second sub-pixel regions and the third sub-pixel regions.
In one embodiment of the present invention, the λ/2 pattern retarder film is positioned between the second substrate and the second polarizer.
In one embodiment of the present invention, the predetermined angle (θ2) is less than 45 degrees, and there is an included angle (ψ1) between slow axes of the λ/2 pattern retarder film and absorption axis of the second polarizer, and the predetermined angle (θ2) and the included angle (ψ1) satisfy the below equations: ψ1+θ2=45°; and 90−θ2>2ψ1.
In one embodiment of the present invention, the λ/2 pattern retarder film is positioned between the first substrate and the first polarizer.
In one embodiment of the present invention, the predetermined angle (θ2) is greater than 45 degrees, and there is an included angle (ψ2) between slow axes of the λ/2 pattern retarder film and absorption axis of the first polarizer, and the predetermined angle (θ2) and the included angle (ψ1) satisfy the below equations: ψ2+θ2=135°; and 2(90−θ2)>ψ2.
A further object of the present invention is to provide a display apparatus comprising a backlight module and a liquid crystal display panel. The liquid crystal display panel comprises: a first substrate comprising a first electrode; a second substrate comprising a second electrode and a plurality of pixels, wherein each of the pixels comprises a main pixel region and a sub-pixel region, and the second electrode has a pixel electrode structure, and the pixel electrode structure comprises a trunk portion and a plurality of branch portions, and an included angle between the trunk portion and the branch portions is of 45 degrees in the main pixel region, and in each of the sub-pixel regions, a predetermined angle between the trunk portion and the branch portions is less or greater than 45 degrees; a liquid crystal layer formed between the first substrate and the second substrate; a first polarizer disposed at an outer side of the first substrate; a second polarizer disposed at an outer side of the second substrate; and a λ/2 pattern retarder film bonded on an outer surface of the first substrate or the second substrate, wherein the λ/2 pattern retarder film comprises a plurality of λ/2 retarder rows and a plurality of zero wave retarder rows, and the zero wave retarder rows are positioned to the main pixel regions, and the λ/2 retarder rows are positioned to the sub-pixel regions.
In one embodiment of the present invention, the sub-pixel regions comprise first sub-pixel regions and second sub-pixel regions, and the predetermined angle is different in the first sub-pixel regions and the second sub-pixel regions, respectively.
In one embodiment of the present invention, the sub-pixel regions further comprise third sub-pixel regions, and the predetermined angle in the third sub-pixel regions is different to the predetermined angles in the first sub-pixel regions and the second sub-pixel regions.
In one embodiment of the present invention, the sub-pixel regions further comprise fourth sub-pixel regions, and the predetermined angle in the fourth sub-pixel regions is different to the predetermined angles in the first sub-pixel regions, the second sub-pixel regions and the third sub-pixel regions.
In one embodiment of the present invention, the λ/2 pattern retarder film is positioned between the second substrate and the second polarizer.
In one embodiment of the present invention, the predetermined angle (θ2) is less than 45 degrees, and there is an included angle (ψ1) between slow axes of the λ/2 pattern retarder film and absorption axis of the second polarizer, and the predetermined angle (θ2) and the included angle (ψ1) satisfy the below equations: ψ1+θ2=45°; and 90−θ2>2ψ1.
In one embodiment of the present invention, the λ/2 pattern retarder film is positioned between the first substrate and the first polarizer.
In one embodiment of the present invention, the predetermined angle (θ2) is greater than 45 degrees, and there is an included angle (ψ2) between slow axes of the λ/2 pattern retarder film and absorption axis of the first polarizer, and the predetermined angle (θ2) and the included angle (ψ1) satisfy the below equations: ψ2+θ2=135°; and 2(90−θ2)>ψ2.
In the LCD panel and the display apparatus using the same of the present invention, with the use of the pixel electrode structure, the color shift problem of the VA type LCD apparatus can be improved. Moreover, the polarized direction and angles of the light rays can be adjusted by the λ/2 pattern retarder film for enhancing the transmittance of the liquid crystal display panel.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings.
The following embodiments are referring to the accompanying drawings for exemplifying specific implementable embodiments of the present invention. Furthermore, directional terms described by the present invention, such as upper, lower, front, back, left, right, inner, outer, side and etc., are only directions by referring to the accompanying drawings, and thus the used directional terms are used to describe and understand the present invention, but the present invention is not limited thereto.
In the drawings, structure-like elements are labeled with like reference numerals.
Referring to
Referring to
Referring to
Referring to
Referring to
Referring to
In this case, the predetermined angle θ2 may be in the range of 10 degrees to 80 degrees except 45 degrees, for example in the range of 35 degrees to 55 degrees except 45 degrees (such as 55 or 40 degrees). Moreover, the sub-pixel regions 103 are preferably positioned at one side of the main pixel regions 102, and the main pixel regions 102 are alternately arranged with the sub-pixel regions 103 on the second substrate 120. In the present invention, with the predetermined angle θ2 which is not equal to 45 degrees in the sub-pixel regions 103, the color shift problem exiting in the VA type LCD can be mitigated.
Referring to
According to an optical theory, when an angle between a tilting direction of the liquid crystal molecules and an absorption axis of the polarizer is 45 degrees, the liquid crystal display panel can have a greatest transmittance. Therefore, in embodiments of the present invention, the transmittance of the liquid crystal display panel 100 can be enhanced by adjusting the tilting direction of the liquid crystal molecules and absorption axes of the polarizers 140, 150.
In the main pixel regions 102, the light rays pass through the zero wave retarder rows 161 of the λ/2 pattern retarder film 160, and thus the polarized state of the light rays are not affected by the λ/2 pattern retarder film 160.
Referring to
ψ1+θ2=45° (1)
90−θ2>2ψ1 (2)
Referring to
Referring to
ψ2+θ2=135° (3)
2(90−θ2)>ψ2 (4)
Referring to
For example, the predetermined angle θ2 in first sub-pixel regions R2 may be of 46 degrees, and the predetermined angle θ2 in the second sub-pixel regions G2 may be of 47 degrees, and the predetermined angle θ2 in the third sub-pixel regions B2 may be of 48 degrees. In this case, the λ/2 retarder rows 162 of the λ/2 pattern retarder film 160 can be positioned to the sub-pixel regions R2, G2, B2, respectively, for enhancing the transmittance thereof.
In a further embodiment, the second substrate 120 further comprises pixel regions corresponding to yellow (Y) color filters and having main-pixel regions and fourth sub-pixel regions. The predetermined angle θ2 between the second trunk portion 126 and the second branch portions 127 in the first, second, third, and fourth sub-pixel regions can be different. In one embodiment, the liquid crystal display panel may be, for example, a PVA type liquid crystal display panel. At this time, in the liquid crystal display panel, the polymer alignment layers may be omitted.
As described above, in the LCD panel and the display apparatus of the present invention using the same, with the use of the pixel electrode structure, the color shift problem of the VA type LCD apparatus can be mitigated. Moreover, the polarized direction and angles of the light rays can be adjusted by the λ/2 pattern retarder film for enhancing the transmittance of the liquid crystal display panel. Therefore, in the LCD panel and the display apparatus of the present invention using the same, the color shift problem of the LCD panel can be improved, and the transmittance thereof can be enhanced.
The present invention has been described with a preferred embodiment thereof and it is understood that many changes and modifications to the described embodiment can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.
Number | Date | Country | Kind |
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2012 1 0163425 | May 2012 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2012/076603 | 6/7/2012 | WO | 00 | 11/13/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/174040 | 11/28/2013 | WO | A |
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20130314640 A1 | Nov 2013 | US |