IP Library Patent Application 11167857
Patent Application
App. No. 11/167,857

Wide-acceptance-angle circular polarizers

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Patent No.
US None
App. No.
11/167,857
Abstract

A circular polarizer comprising a single linear polarizer producing a linear state of polarization and at least one phase retardation film layered with the single linear polarizer. In a first embodiment, the at least one phase retardation film includes at least one uniaxial A-plate phase retardation film and at least one uniaxial C-plate phase retardation film. In a second embodiment of the invention, the circular polarizer includes a linear polarizer and at least one biaxial phase retardation film layered with the linear polarizer. In another example of the circular polarize of the second embodiment, at least one uniaxial A-plate phase retardation film and/or at least one uniaxial C-plate phase retardation film is also layer with the linear polarize and the biaxial phase retardation film.

Claims (50)

1 . A circular polarizer comprising:

a single linear polarizer producing a linear state of polarization;

at least one uniaxial A-plate phase retardation film; and

at least one uniaxial C-plate phase retardation film.

2 . The circular polarizer of claim 1 , wherein said circular polarizer induces a right-hand circularly polarized light over a range of incident angles between approximately 0° and approximately 85° and over an azimuth of incident plane between approximately 0° and approximately 360° with respect to a transmission axis of said linear polarizer at a single wavelength of incident light.

3 . The circular polarizer of claim 1 , wherein said circular polarizer induces a left-hand circularly polarized light over a range of incident angles between approximately 0° and approximately 85° and over an azimuth of incident plane between approximately 0° and approximately 360° with respect to a transmission axis of said linear polarizer at a single wavelength of incident light.

4 . The circular polarizer of claim 1 , wherein said circular polarizer induces a right-hand circularly polarized light over a range of incident angles between approximately 0° and approximately 85° and over an azimuth of incident plane between approximately 0° and approximately 360° with respect to a transmission axis of said linear polarizer in the 450-650 nm spectral range of the incident light.

5 . The circular polarizer of claim 1 , wherein said circular polarizer induces a left-hand circularly polarized light over a range of incident angles between approximately 0° and approximately 85° and over an azimuth of incident plane between approximately 0° and approximately 360° with respect to a transmission axis of said linear polarizer in the 450-650 nm spectral range of the incident light.

6 . The circular polarizer of claim 1 , wherein said at least one uniaxial A-plate phase retardation film comprises:

a slow axis between approximately between one of approximately +0.1° to approximately +89.9° and approximately −0.1° to approximately −89.9° with respect to the transmission direction of the said linear polarizer; and

a phase retardation of d·Δn=±(0.05λ˜3.5λ), where λ is the wave length of incident light.

7 . The circular polarizer of claim 1 , wherein the said at least one uniaxial C-plate phase retardation film comprises:

a phase retardation of approximately d·Δn=±(0.05λ˜3.5λ), where λ is the wave length of incident light.

8 . The circular polarizer of claim 1 wherein said circular polarizer is right-hand circular polarized.

9 . The circular polarizer of claim 1 wherein said circular polarizer is left-hand circular polarized.

10 . A circular polarizer comprising:

a single linear polarizer producing a linear state of polarization; and

at least one biaxial phase retardation film.

11 . The circular polarizer of claim 10 , further comprising:

at least one uniaxial A-plate phase retardation film layered with said linear polarizer and said biaxial retardation film.

12 . The circular polarizer of claim 11 , further comprising:

at least one uniaxial C-plate phase retardation film layered with said linear polarizer and said biaxial retardation film.

13 . The circular polarizer of claim 11 , further comprising:

at least one uniaxial C-plate phase retardation film layered with said linear polarizer, said biaxial retardation film, and said at least one uniaxial A-plate phase retardation film.

14 . The circular polarizer of claim 11 , wherein said at least one biaxial phase retardation film comprises:

a slow axis on the plane parallel to a polarizer-retarder surface of said at least one biaxial phase retardation film between one of approximately +0.1° to approximately +89.9° and approximately −0.1° to approximately 89.9° with respect to the transmission direction of the said linear polarizer; and

a phase retardation on the plane parallel to the polarizer-retarder surface of approximately d·Δn=±(0.05λ˜3.5λ); and

a phase retardation on the plane perpendicular to the polarizer-retarder surface of approximately d·Δn=±(0.05λ˜3.5λ) where λ is the wave length of incident light.

15 . The circular polarizer of claim 12 , wherein said at least one biaxial phase retardation film comprises:

a slow axis on the plane parallel to a polarizer-retarder surface of said at least one biaxial phase retardation film between one of approximately +0.1° to approximately +89° and approximately −0.1° to approximately −89° with respect to the transmission direction of the said linear polarizer; and

a phase retardation on the plane parallel to the polarizer-retarder surface of approximately d·Δn=±(0.2λ˜3.5λ); and

a phase retardation on the plane perpendicular to the polarizer-retarder surface of approximately d·Δn=±(0.2λ˜3.5λ) where λ is the wave length of incident light.

16 . The circular polarizer of claim 12 , wherein said at least one uniaxial A-plate phase retardation film comprises:

a slow axis on the plane parallel to a polarizer-retarder surface of said at least one uniaxial A-plate phase retardation film between one of approximately +0.1° to approximately +89.9° and approximately −0.1° to approximately −89.9° with respect to the transmission direction of the said linear polarizer; and

a phase retardation of approximately d.Δn=±(0.05λ˜3.5λ) on the plane parallel to said polarizer-retarder surface where λ is the wavelength of incident light.

17 . The circular polarizer of claim 13 , wherein said at least one biaxial phase retardation film comprises:

a slow axis on the plane parallel to a polarizer-retarder surface of said at least one biaxial phase retardation film between one of approximately +0.1° to approximately +89° and approximately −0.1° to approximately −89° with respect to the transmission direction of the said linear polarizer; and

a phase retardation on the plane parallel to the polarizer-retarder surface of approximately d·Δn=±(0.2λ˜3.5λ); and

a phase retardation on the plane perpendicular to the polarizer-retarder surface of approximately d·Δn=±(0.2λ˜3.5λ) where λ is the wave length of incident light.

18 . The circular polarizer of claim 13 , wherein the said at least one uniaxial C-plate phase retardation film comprises:

a phase retardation of approximately d·Δn=±(0.05λ˜3.5λ), where λ is the wave length of incident light.

19 . The circular polarizer of claim 14 , wherein said at least one biaxial phase retardation film comprises:

a slow axis on the plane parallel to a polarizer-retarder surface of said at least one biaxial phase retardation film between one of approximately +0.1° to approximately +89° and approximately −0.1° to approximately −89° with respect to the transmission direction of the said linear polarizer; and

a phase retardation on the plane parallel to the polarizer-retarder surface of approximately d·Δn=±(0.2λ˜3.5λ); and

a phase retardation on the plane perpendicular to the polarizer-retarder surface of approximately d·Δn=±(0.2λ˜3.5λ) where λ is the wave length of incident light.

20 . The circular polarizer of claim 14 , wherein said at least one uniaxial A-plate phase retardation film comprises:

a slow axis on the plane parallel to a polarizer-retarder surface of said at least one uniaxial A-plate phase retardation film between one of approximately +0.1° to approximately +89.9° and approximately −0.1° to approximately −89.9° with respect to the transmission direction of the said linear polarizer; and

a phase retardation of approximately d·Δn=±(0.05λ˜3.5λ) on the plane parallel to said polarizer-retarder surface where λ is the wavelength of incident light.

21 . The circular polarizer of claim 14 , wherein the said at least one uniaxial C-plate phase retardation film comprises:

a phase retardation of approximately d·Δn=±(0.05λ˜3.5λ), where λ is the wave length of incident light.

Assignments (5)
CHANGE OF NAME Recorded Apr 13, 2014
From: CHIMEI INNOLUX CORPORATION
To: INNOLUX CORPORATION
Reel/Frame 032672/0813 →
MERGER Recorded Mar 8, 2011
From: TPO DISPLAYS CORP.
To: CHIMEI INNOLUX CORPORATION
Reel/Frame 025918/0759 →
CHANGE OF NAME Recorded Jan 5, 2011
From: TOPPOLY OPTOELECTRONICS CORP.
To: TPO DISPLAYS CORP.
Reel/Frame 025586/0195 →
RE-RECORD TO CORRECT THE FIRST CONVEYING PARTY NAME AND THE RECEIVING PARTY NAMES, PREVIOUSLY RECORDED AT REEL 016743 FRAME 0394. THE ASSIGNORS HEREBY CONFIRM THE ASSIGNMENT OF THE ENTIRE INTEREST. Recorded Apr 14, 2008
From: QI, HONG; LU, RUIBO; ZHU, XINYU; WU, THOMAS X.; WU, SHIN-TSON
To: RESEARCH FOUNDATION OF THE UNIVERSITY OF CENTRAL FLORIDA, INCORPORATED; TOPPOLY OPTOELECTRONICS CORP.
Reel/Frame 020807/0603 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 27, 2005
From: HONG, QI; LU, RUIBO; ZHU, XINYU; WU, THOMAS X.; WU, SHIN-TSON
To: TOPPOLY OPTOELECTRONICS CORP.
Reel/Frame 016743/0394 →