IP Library Granted Patent US 7,336,330
Granted Patent B2
US 7,336,330 · App. 11/129,153 · Granted Feb 26, 2008

Optical film and polarizing film using the same, and method for improving view angle of the polarizing film

Assignees: Nippon Kayaku Kabushiki Kaisha; Polatechno Co., Ltd.
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Quick Facts
Patent No.
US 7,336,330
App. No.
11/129,153
Granted
Feb 26, 2008
Kind
B2
Abstract

The invention provides an optical film prepared by laminating at least one of a first retardation film ( 2 ), having a mean in-plane refractive index of n 0 and refractive index in the thickness direction of n e wherein n e −n o >0, and at least one of a second retardation film ( 3 ) having an in-plane refractive index of n x in the direction showing the maximum refractive index, refractive index of n y in the direction perpendicular to the direction described just before, and refractive index in the thickness direction of n z wherein n x >n y ≧n z . The light leakage occurred as the observation point is tilted from the front direction to a direction different from the direction of each absorption axis can be reduced when a polarizing film is arranged so that the absorption axes will be perpendicular to each other.

Claims (14)

1. An optical film comprising an achromatic retardation film having an in-plane refractive index nx showing the maximum refractive index, a refractive index of ny in the direction perpendicular to the direction described just before, and a refractive index of nz in the thickness direction wherein nx>ny and nz>ny, and wherein Δna=nx−ny and da is a thickness of the film, Δna·da is 100 to 400 nm at a wavelength of 550 nm, the difference between a retardation obtained in an ideal achromatic film and an actually obtained retardation is −50 to 50 nm at the wavelength shorter than 550 nm, and the difference is −80 to 80 nm at the wavelength longer than 550 nm, and a polarizing element, said achromatic retardation film and said polarizing element being laminated so that the maximum refractive index direction of said achromatic retardation film coincides with the direction of an absorption axis of the polarizing element.

2. An optical film according to claim 1 , prepared by laminating said achromatic retardation film, said polarizing element and a protective film.

3. An optical film according to claim 2 , wherein said protective film comprises a cycloolefin polymer.

4. An optical film according to claim 1 , prepared by laminating a polarizing film comprising said polarizing element sandwiched between triacetyl cellulose films whose surfaces are treated with an alkali, and said achromatic retardation film.

5. A method for improving the view angle of a polarizing film, comprising arranging an achromatic retardation film having an in-plane refractive index nx showing the maximum refractive index, a refractive index of ny in the direction perpendicular to the direction described just before, and a refractive index of nz in the thickness direction wherein nx>ny and nz>ny, and wherein Δna=nx−ny and da being a thickness of the film, Δna·da is 100 to 400 nm at a wavelength of 550 nm, the difference between a retardation obtained in an ideal achromatic film and an actually obtained retardation is −50 to 50 nm at the wavelength shorter than 550 nm, and the difference being −80 to 80 nm at the wavelength longer than 550 nm, between two polarizing elements disposed so that their absorption axes are perpendicular to each other, in such a manner that nx direction of said retardation film coincides with the direction of an absorption axis of one of the polarizing elements.

6. The method for improving the view angle of a polarizing film according to claim 5 , wherein any one of said polarizing elements is an optical film comprising an achromatic retardation film having an in-plane refractive index nx showing the maximum refractive index, a refractive index of ny in the direction perpendicular to the direction described just before, and a refractive index of nz in the thickness direction wherein nx>ny and nz>ny, and wherein Δna=nx−ny and da is a thickness of the film, Δna·da is 100 to 400 nm at a wavelength of 550 nm, the difference between a retardation obtained in an ideal achromatic film and an actually obtained retardation is 50 to 50 nm at the wavelength shorter than 550 nm, and the difference is 80 to 80 nm at the wavelength longer than 550 nm, and a polarizing element, said achromatic retardation film and said polarizing element being laminated so that the maximum refractive index direction of said achromatic retardation film coincides with the direction of an absorption axis of the polarizing element.

7. A liquid crystal display device comprising the optical film according to claim 1 .

8. An optical film according to claim 3 , wherein said cycloolefin polymer is a norbornene derivative.

9. The method for improving the view angle of a polarizing film according to claim 6 , wherein any one of polarizing elements is the optical film prepared by laminating said achromatic retardation film, said polarizing element and a protective film.

10. The method for improving the view angle of a polarizing film according to claim 9 , wherein said protective film comprises a cycloolefin polymer.

11. The method for improving the view angle of a polarizing film according to claim 6 , wherein any one of polarizing elements is the optical film prepared by laminating a polarizing film comprising said polarizing element sandwiched between triacetyl cellulose films whose surfaces are treated with an alkali, and said achromatic retarder film.

12. A liquid crystal display device comprising the optical film according to claim 2 .

13. A liquid crystal display device comprising the optical film according to claim 3 .

14. A liquid crystal display device comprising the optical film according to claim 4 .

Priority Claims (3)
JP 2000-383509 · Dec 18, 2000 · national
JP 2001-8597 · Jan 17, 2001 · national
JP 2001-20324 · Jan 29, 2001 · national
Continuity (2)
Division 1043339400
Related Publication 20050219449A1 · Oct 6, 2005