IP Library › Granted Patent US 6,912,018
Granted Patent B2
US 6,912,018 · App. 10/601,761 · Granted Jun 28, 2005

Electro-optical glazing structures having total-reflection and transparent modes of operation for use in dynamical control of electromagnetic radiation

Assignee: InVentQjaya Sdn. Bhd.
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Quick Facts
Patent No.
US 6,912,018
App. No.
10/601,761
Granted
Jun 28, 2005
Kind
B2
Abstract

Electro-optical glazing structures having total-reflection and semi-transparent and totally-transparent modes of operation which are electrically-switchable for use in dynamically controlling electromagnetic radiation flow in diverse applications.

Claims (122)

1. An electro-optical glazing structure having total-reflection and transparent modes of operation for selectively reflecting and transmitting electromagnetic radiation without absorption, respectively, said electro-optical glazing structure comprising:

an electro-optical panel of laminated construction, having first and second optical slates of operation; and

optical state switching means for switching said electro-optical panel to said first optical state of operation in order to induce said electro-optical glazing into said total-reflection mode of operation, and for switching said electro-optical panel to said second optical state of operation in order to induce said electro-optical glazing into said transmission mode of operation,

wherein electromagnetic radiation within a first prespecified bandwidth falling incident upon said electro-optical panel is totally reflected from said electro-optical panel without absorption when said electro-optical panel is switched to said first optical state of operation, and

wherein electromagnetic radiation within a second prespecified bandwidth falling incident upon said electro-optical panel is transmitted through said electro-optical panel without absorption when said electro-optical panel is switched to said second optical state of operation.

2. The electro-optical glazing structure of claim 1 , wherein said first prespecified bandwidth comprises the infrared (IR) portion and ultra-violet (UV) portions of the electromagnetic spectrum and said second prespecified bandwidth comprises said IR portion, said UV portion and the visible portion of the electromagnetic spectrum.

3. The electro-optical glazing structure of claim 1 , wherein said electro-optical panel comprises:

a first electrically-passive cholesteric liquid crystal (CLC) electromagnetic radiation polarizing panel;

a second electrically-passive CLC electromagnetic radiation polarizing panel; and

an electrically-active π-phase retardation panel interposed between said first and second electrically-passive CLC electromagnetic radiation polarizing panels.

4. The electro-optical glazing structure of claim 3 ,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a left hand circularly polarized (LHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a right hand circularly polarized (RHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

5. The electro-optical glazing structure of claim 3 ,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a right hand circularly polarized (RHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a left hand circularly polarized (LHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP stare and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

6. The electro-optical glazing structure of claim 1 , wherein said electro-optical panel comprises:

a first electrically-active cholesteric liquid crystal (CLC) electromagnetic radiation polarizing panel;

a second electrically-active CLC electromagnetic radiation polarizing panel; and

an electrically-passive π-phase retardation panel interposed between said first and second electrically-active CLC electromagnetic radiation polarizing panels.

7. The electro-optical glazing structure of claim 6 ,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a left hand circularly polarized (LHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a right hand circularly polarized (RHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

8. The electro-optical glazing structure of claim 6 ,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a right hand circularly polarized (RHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a left hand circularly polarized (LHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

9. The electro-optical glazing structure of claim 1 , wherein said electro-optical panel comprises:

a first electrically-active cholesteric liquid crystal (CLC) electromagnetic radiation polarizing panel; and

a second electrically-active CLC electromagnetic radiation polarizing panel adjacent said first electrically-active CLC electromagnetic radiation polarizing panel.

10. The electro-optical glazing structure of claim 9 ,

wherein said first electrically-active CLC electromagnetic radiation polarizing panel totally reflects without absorption electromagnetic radiation having a left hand circularly polarized (LHCP) stale and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation, and

wherein said first electrically-active CLC electromagnetic radiation polarizing panels transmits without absorption electromagnetic radiation having either a right hand circularly polarized (RHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation;

wherein said second electrically-active CLC electromagnetic radiation polarizing panel totally reflects without absorption electromagnetic radiation having said RHCP state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation, and

wherein said second electrically-active CLC electromagnetic radiation polarizing panels transmits without absorption electromagnetic radiation having either said LHCP stare and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

11. The electro-optical glazing structure of claim 1 , which further comprises:

a window frame for mounting said electro-optical panel within a house or office building, or aboard a transportation vehicle.

12. The electro-optical glazing structure of claim 11 , which further comprises:

a electromagnetic-sensor mounted on said window frame, far sensing electromagnetic conditions;

a battery supply mounted within said window frame, for providing electrical power;

a electromagnetic-powered battery recharger mounted within said window frame, for recharging the battery;

electrical circuitry mounted within said window frame, for producing glazing control voltages for switching said first and second optical states of operation; and

a programmable micro-computer chip mounted within said window frame, for controlling the operation of said battery recharger and said electrical circuitry, and the production of said glazing control voltages as required by a radiation flow control program stored within said programmable microcontroller.

13. An intelligent window system for dynamic electromagnetic radiation control which comprises:

a plurality of said electro-optical glazing structures of claim 11 , each mounted within a house or office building, or aboard a transportation vehicle; and

a central control computer for coordinating the operation of said electro-optical glazing structures.

14. An intelligent pair of sunglasses, comprising:

a frame; and

a pair of optical element supported within said frame,

wherein each said optical element is realized using said electro-optical glazing structure of claim 1 .

15. An composite electro-optical glazing structure which comprises:

a plurality of said electro-optical glazing structures of claim 1 , stacked together as a composite electro-optical structure,

wherein said composite electro-optical structure has more than two said optical states of operation which permit complex levels of electromagnetic radiation control.

16. A stereoscopic 3-D viewing device in the form of eyeglasses, comprising:

a pair of optical elements positionable before the eyes of a user of said eyeglasses,

each said optical element including said electro-optical glazing structure of claim 1 ,

whereby said eyeglasses can control electromagnetic radiation during stereoscopic 3-D viewing or monoscopic 2-D viewing of displayed images (i.e. virtual world viewing), or during stereoscopic viewing of real world objects.

17. An electro-optical glazing structure having total-reflection and transparent modes of operation for selectively reflecting and transmitting electromagnetic radiation without absorption, respectively, said electro-optical glazing comprising:

an electro-optical panel of laminated construction, having first and second optical states of operation;

an electrical switching device operably coupled to said electro-optical panel;

wherein electromagnetic radiation within a first prespecified bandwidth falling incident upon said electro-optical panel is totally reflected from said electro-optical panel without absorption when said electro-optical panel is switched to said first optical state of operation, and

wherein electromagnetic radiation within a second prespecified bandwidth falling incident upon said electro-optical panel is transmitted through said electro-optical panel without absorption when said electro-optical panel is switched to said second optical state of operation.

18. The electro-optical glazing structure of claim 17 , wherein said first prespecified bandwidth comprises the infrared (IR) portion and ultra-violet (UV) portions of the electromagnetic spectrum, and said second prespecified bandwidth comprises said IR portion, said UV portion and the visible portion of the electromagnetic spectrum.

19. The electro-optical glazing structure of claim 17 , wherein said electro-optical panel comprises:

a first electrically-passive cholesteric liquid crystal (CLC) electromagnetic radiation polarizing panel;

a second electrically-passive CLC electromagnetic radiation polarizing panel; and

an electrically-active π-phase retardation panel interposed between said first and second electrically-passive CLC electromagnetic radiation polarizing panels.

20. The electro-optical glazing structure of claim 19 ,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a left hand circularly polarized (LHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a right hand circularly polarized (RHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

21. The electro-optical glazing structure of claim 19 ,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a right hand circularly polarized (RHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a left hand circularly polarized (LHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-passive CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP stare and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

22. The electro-optical glazing structure of claim 17 , wherein said electro-optical panel comprises:

a first electrically-active cholesteric liquid crystal (CLC) electromagnetic radiation polarizing panel;

a second electrically-active CLC electromagnetic radiation polarizing panel; and

an electrically-passive π-phase retardation panel interposed between said first and second electrically-active CLC electromagnetic radiation polarizing panels.

23. The electro-optical glazing structure of claim 22 ,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a left hand circularly polarized (LHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a right hand circularly polarized (RHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical stale of operation.

24. The electro-optical glazing structure of claim 22 ,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels totally reflect without absorption electromagnetic radiation having a right hand circularly polarized (RHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation,

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either a left hand circularly polarized (LHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

25. The electro-optical glazing structure of claim 17 , wherein said electro-optical panel comprises:

a first electrically-active cholesteric liquid crystal (CLC) electromagnetic radiation polarizing panel; and

a second electrically-active CLC electromagnetic radiation polarizing panel adjacent said first electrically-active CLC electromagnetic radiation polarizing panel.

26. The electro-optical glazing structure of claim 25 ,

wherein said first electrically-active CLC electromagnetic radiation polarizing panel totally reflects without absorption electromagnetic radiation having a left band circularly polarized (LHCP) state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation, and

wherein said first electrically-active CLC electromagnetic radiation polarizing panels transmits without absorption electromagnetic radiation having either a right hand circularly polarized (RHCP) state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation;

wherein said second electrically-active CLC electromagnetic radiation polarizing panel totally reflects without absorption electromagnetic radiation having said RHCP state and a wavelength within said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation, and

wherein said second electrically-active CLC electromagnetic radiation polarizing panels transmits without absorption electromagnetic radiation having either said LHCP state and/or a wavelength outside said first prespecified bandwidth when said electro-optical panel is switched to said first optical state of operation; and

wherein said first and second electrically-active CLC electromagnetic radiation polarizing panels transmit without absorption electromagnetic radiation having either said LHCP state or said RHCP state and a wavelength within said second prespecified bandwidth when said electro-optical panel is switched to said second optical state of operation.

27. The electro-optical glazing structure of claim 17 , which further comprises:

a window frame for mounting said electro-optical panel within a house or office building, or aboard a transportation vehicle.

28. The electro-optical glazing structure of claim 27 , which further comprises:

a electromagnetic-sensor mounted on said window frame, for sensing electromagnetic conditions;

a battery supply mounted within said window frame, for providing electrical power;

a electromagnetic-powered battery recharger mounted within said window frame, for recharging the battery;

electrical circuitry mounted within said window frame, for producing glazing control voltages for switching said first and second optical states of operation; and

a programmable micro-computer chip mounted within said window frame, for controlling the operation of said battery recharger and said electrical circuitry, and the production of said glazing control voltages as required by a radiation flaw control program stored within said programmable microcontroller.

29. An intelligent window system for dynamic electromagnetic radiation control which comprises:

a plurality of said electro-optical glazing structures of claim 27 , each mounted within a house or office building, or aboard a transportation vehicle; and

a central control computer for coordinating the operation of said electro-optical glazing structures.

30. An intelligent pair of sunglasses, comprising:

a frame; and

a pair of optical element supported within said frame,

wherein each said optical element is realized using said electro-optical glazing structure of claim 17 .

31. An composite electro-optical glazing structure which comprises:

a plurality of said electro-optical glazing structures of claim 17 , stacked together as a composite electro-optical structure,

wherein said composite electro-optical structure has more than two said optical states of operation which permit complex levels of electromagnetic radiation control.

32. A stereoscopic 3-D viewing device in the form of eyeglasses, comprising:

a pair of optical elements positionable before the eyes of a user of said eyeglasses,

each said optical element including said electro-optical glazing structure of claim 17 ,

whereby said eyeglasses can control electromagnetic radiation during stereoscopic 3-D viewing or monoscopic 2-D viewing of displayed images (i.e. virtual world viewing), or during stereoscopic viewing of real world objects.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 19, 2006
From: INVENTQJAYA SND BHD
To: REVEO, INC.
Reel/Frame 017804/0477 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 3, 2003
From: REVEO, INC.
To: INVENTQJAYA SDN BHD
Reel/Frame 014650/0525 →
Continuity (11)
Continuation 0935419200 · Jul 15, 1999
Continuation In Part 0873946700 · Oct 29, 1996
Continuation In Part 0855002200 · Oct 30, 1995
Continuation In Part 1060176100
Continuation In Part 0878728200 · Jan 24, 1997
Continuation 0826594900 · Jun 27, 1994
Division 0779888100 · Nov 27, 1991
Division 1060176100
Continuation In Part 0874329300 · Nov 4, 1996
Continuation In Part 0871531400 · Sep 16, 1996
Related Publication 20040061819A1 · Apr 1, 2004