Claims
- 1. An electro-optic waveplate for changing the state of polarization of light passing therethrough while providing a substantially constant birefringence when the principal birefringent axes of the electro-optic waveplate are rotated, comprising:a birefringent material having two principal orthogonal birefringent axes that are rotatable in the presence of suitably applied voltages, the birefringent material having a first end and a second end and having a longitudinal axis of length L defined therebetween; at least four voltage sources providing at least four related different voltages simultaneously along sequential or contiguous regions of the birefringent material for providing at least four controllable and varying electric fields to the birefringent material, such that retardance of the birefringent material remains substantially constant while the birefringent axes thereof are rotated for changing the state of polarization of light passing therethrough to a desired state, wherein the at least four different voltages have a phase relationship or a phase and magnitude relationship therebetween.
- 2. An electro-optic waveplate as defined in claim 1, wherein the substantially constant total retardance is equal to one of a quarter wavelength or a half wavelength for a predetermined wavelength of light passing therethrough.
- 3. An electro-optic waveplate as defined in claim 2, wherein the voltages are suitable to substantially compensate for variations in the birefringent material and/or suitable to overcome non-uniformity in performance which would otherwise occur in the absence of a varying electric field along the length L and in the presence of a non-varying electric field along the length L.
- 4. An electro-optic waveplate as defined in claim 1, wherein two of the at least four different voltages have a constant phase offset therebetween.
- 5. An electro-optic waveplate as defined in claim 1, wherein two of the voltages are of the form:V1=VS1 sin(θ)+VC1 cos(θ)+VT1 V1′=VS1′ sin(θ+α)+VC1′ cos(θ+α)+VT1′.
- 6. An electro-optic waveplate as defined in claim 1, wherein two of the voltages are in the form of a first sinusoidal voltage and a second sinusoidal voltage, which is substantially the same as the first sinusoidal voltage with the exception of having a phase offset.
- 7. An electro-optic waveplate as defined in claim 1, wherein the waveplate provides a constant quarter or half wave of retardance, wherein two of the different voltages are of the form:V1=VS1 sin(θ)+VC1 cos(θ)+VT1 V2=VS2 sin(θ)+VC2 cos(θ)+VT2; and wherein two of the voltages are of the form:V1′=VS1′ sin(θ+α)+VC1′ cos(θ+α)+VT1′V2′=VS2′ sin(θ+α)+VC2′ cos(θ+α)+VT2′where 0<α<360° and where θ can be any angle and endlessly varied.
- 8. A polarization controller comprising a waveplate as defined in claim 1, and further comprising two other waveplates optically coupled therewith.
- 9. A quarter waveplate or a half waveplate comprising a first pair of electrodes spaced apart along a block of birefringent material serving as voltage terminals to provide two different and related electric fields through the material simultaneously in response to two different applied voltages;a second pair of electrodes spaced apart along the block of birefringent material serving as voltage terminals to provide two other electric fields through the material simultaneously in response to two other applied voltages; and means for applying voltage of the form V1=VS1 sin(θ)+VC1 cos(θ)+VT1 V2=VS2 sin(θ)=VC2 cos(θ)+VT2 to the first electrodes, and voltages of the form: V1′=VS1′ sin(θ+α)+VC1′ cos(θ+α)+VT1′V2′=VS2′ sin(θ+α)+VC2′ cos(θ+α)+VT2′ to the second electrodes, where 0<α<360° and where θ can be any angle and endlessly varying.
- 10. A polarization controller comprising:electrically controllable waveplates arranged in a predetermined spatial relationship having a same longitudinal axis of propagation to allow light launched into one of the waveplates to propagate through the other of the waveplates, one of the waveplates including plural pairs of electrodes spaced across an electro-optical material to provide at least four different electric fields simultaneously along the axis of propagation through the electro-optical material to change the state of polarization of light propagated therein in the presence of suitably applied voltages; and, means for providing the suitably applied voltages to yield the at least four different electric fields, such that a substantially quarter or half wavelength of retardance will result for light passing therethrough; wherein the at least four different electric fields are of a magnitude and phase to ensure a substantially constant retardance through said one waveplate as birefringent axes of the waveplate are rotated.
- 11. A polarization controller as defined in claim 10, wherein the waveplates are formed on a same block of electro-optical material; and wherein the waveplates each have at least two pairs of terminals for applying at least four related different voltages to each waveplate.
- 12. A polarization controller as defined in claim 11, wherein each of the quarter waveplates are formed of two eighth waveplates each having two controllable voltage sources.
- 13. A method of providing a near-ideal quarter or half waveplate comprising the steps of:launching an optical signal into a block of electro-optical material having a length L; providing four different voltages simultaneously to the block of electro-optical material that will yield four different electric fields therethrough along the length L, wherein the voltages have a magnitude or a phase relationship therebetween; and ensuring that the voltages are sufficient to provide a substantially constant retardance along the length L in the presence of the four different fields.
- 14. A polarization transformer for controlling the polarization and phase of an optical signal comprising:a block of electro-optical material having a plurality of electrode pairs thereon for applying quadrature voltages thereto, each pair of terminals having a third common terminal disposed therebetween, said block of birefringent material, in the presence of an applied voltage for forming a near-ideal controllable waveplate, a first plurality of the plurality of pairs of electrodes for inducing a phase retardation of an optical signal passing through the block of substantially about π/2 radians and forming a first quarter waveplate; a second plurality of the pairs of electrodes for inducing a phase retardation of an optical signal passing through the block of substantially about π radians forming a first half waveplate; and, a third plurality of the plurality of pairs of electrodes for inducing a phase retardation of an optical signal passing through the block of substantially about π/2 radians and forming a second quarter waveplate.
Parent Case Info
This application claims benefit of Provisional No. 60/198,574 filed Apr. 20, 2000.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4898441 |
Shimizu |
Feb 1990 |
A |
5212743 |
Heismann |
May 1993 |
A |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/198574 |
Apr 2000 |
US |