Claims
- 1. A polarization filter, comprising:
a first sub-wavelength resonant grating structure (SWS) for receiving incident light, and a second SWS, said first and second SWS disposed relative to one another such that incident light which is transmitted by said first SWS passes through said second SWS, said filter having a polarization sensitive resonance, said polarization sensitive resonance substantially reflecting a first polarization component of said incident light while substantially transmitting a second polarization component of said incident light, said polarization components being orthogonal to one another.
- 2. The filter of claim 1, wherein said first and second SWS are spaced apart a distance being less than one half an optical wavelength.
- 3. The filter of claim 1, wherein said incident light is substantially normal to a surface of said first SWS.
- 4. The filter of claim 1, wherein said SWS are each formed from respective pluralities of sub-wavelength features, said plurality of features having a length dimension and a shorter width dimension, said plurality of features disposed in respective dielectric waveguide materials.
- 5. The filter of claim 4, wherein said plurality of features have a higher refractive index as compared to said respective waveguide materials.
- 6. The filter of claim 4, wherein said plurality of features are embedded in said waveguides.
- 7. The filter of claim 4, wherein said filter reflects substantially all said incident light having an electrical field vector parallel to said lengths and transmits substantially all said incident light having an electrical field vector perpendicular to said lengths.
- 8. The filter of claim 1, wherein said filter separates said polarization components of incident light including visible light, wherein a reflective bandwidth of said filter includes at least one full color band of light.
- 9. The filter of claim 1, wherein said filter has a plurality of areas defining a plurality of pixels, said plurality of pixels each adapted to produce a configurable resonant reflective response.
- 10. The filter of claim 1, further comprising a structure for modulating a resonant reflective response of said filter.
- 11. The filter of claim 10, wherein said structure for modulating includes at least one electro-optic layer, said at least one electro-optic layer disposed in optical contact with at least one of said SWS.
- 12. The filter of claim 11, wherein said electro-optic layer modulates light reflected by said filter over a narrowband portion of a reflective bandwidth of said filter.
- 13. The filter of claim 1, further comprising a polarization converter for converting one of said polarization components output by said filter into said other polarization component.
- 14. The filter of claim 13, further comprising structure for combining said transmitted and said reflected polarization components, wherein substantially all said incident light is converted into a single beam having a single one of said polarization components.
- 15. A method for forming a polarization filter, comprising the steps of:
providing a first waveguide having a first refractive index; forming a first SWS in said first waveguide, said first SWS formed by disposing a first plurality of sub-wavelength features in said first waveguide with a substantially equal spacing, said first plurality of features formed from material having a refractive index greater than said first refractive index; providing a second waveguide having a second refractive index, and forming a second SWS in said second waveguide, said second SWS formed by disposing a plurality of sub-wavelength features in said second waveguide with a substantially equal spacing, said second plurality of features formed from material having a refractive index greater than said second refractive index, wherein said first and second SWS are disposed relative to one another such that a portion of incident light applied to said first SWS passes through both said second SWS.
- 16. The method of claim 15, wherein said first and second waveguide are included in as part of a single unitary waveguide material.
- 17. The method of claim 15, wherein said plurality of features are embedded in said waveguides.
- 18. The method of claim 15, wherein said providing comprises the steps of:
selecting at least one mold, said mold having a pattern defining a plurality of features; filling said mold with a liquid, said liquid adapted to produce a solid material following hardening, and hardening said liquid to form said waveguides.
- 19. The method of claim 18, wherein said forming comprises the step of filling said plurality of features with a feature material.
- 20. The method of claim 18, wherein said liquid is sol gel.
- 21. The method of claim 20, wherein said sol gel is a silica gel, said silica gel adapted to form silica after said hardening step.
- 22. The method of claim 19, further comprising the step of disposing said SWS relative to one another such that a portion of incident light applied to the first SWS passes through said second SWS.
- 23. The method of claim 22, further comprising an annealing step after said disposing step, said annealing step to create an integrated filter structure.
- 24. The method of claim 23, further comprising the step of interposing an optically transparent material between said first and second SWS before said annealing step.
- 25 A method for separating orthogonal polarizations of light, comprising the steps of:
providing a filter comprising: a first sub-wavelength resonant grating structure (SWS) for receiving incident light, said incident light having orthogonal polarization components, and a second SWS, said first and second SWS disposed relative to one another such that a portion of said incident light applied to said first SWS passes through said second SWS, wherein said filter substantially reflects one of said orthogonal polarization components and substantially transmits the other of said orthogonal polarization components; shining said incident light on said first SWS, and substantially reflecting one of said orthogonal polarization components and substantially transmitting the other of said orthogonal polarization components.
- 26. The method of claim 25, further comprising the step of directing said incident light to be substantially normal to a surface of said first SWS.
- 27. The method of claim 25, wherein said incident light includes visible light, wherein a reflective bandwidth of said filter includes at least one full color band of light.
- 28. The method of claim 27, wherein at least one of said SWS have a plurality of areas defining a plurality of pixels, further comprising the step of producing a resonant reflective response from at least one of said plurality of pixels.
- 29. The method of claim 25, further comprising modulating a resonant reflective response of said filter.
- 30. The method of claim 29, wherein said modulating includes modulating said reflected orthogonal polarization component over a narrowband portion of a reflective bandwidth of said filter.
- 31. The method of claim 25, further comprising the step of converting one of said orthogonal polarization components output by said filter into said other orthogonal polarization component.
- 32. The filter of claim 31, further comprising the step of recombining said transmitted and said reflected orthogonal polarization components, wherein substantially all said incident light is combined into a single beam having a single one of said orthogonal polarization components.
- 33. A high Q narrowband filter, comprising:
a first sub-wavelength resonant grating structure (SWS) for receiving incident light, and a second SWS, said first and second SWS disposed relative to one another such that incident light which is transmitted by said first SWS passes through said second SWS, said filter having a polarization sensitive resonance; wherein said first and second SWS are spaced apart a distance being at least one half an optical wavelength, said polarization sensitive resonance substantially reflecting a first polarization component of said incident light over a broad band of wavelengths except at least one narrow band within said broad band, said narrow band substantially transmitting said first polarization component when said filter spacing distance substantially equals an integer number of half optical wavelengths of said incident light, said filter substantially transmitting a second polarization component of said incident light over an entire width of said broad band, said polarization components being orthogonal to one another.
- 34. A method for high Q narrowband filtering, comprising the steps of:
providing a filter comprising: a first sub-wavelength resonant grating structure (SWS) for receiving incident light, said incident light having orthogonal polarization components, and a second SWS, said first and second SWS disposed relative to one another such that a portion of said incident light applied to said first SWS passes through said second SWS; shining said incident light on said first SWS; substantially reflecting a first polarization component of said incident light over a broad band of wavelengths except at least one narrow band within said broad band, said narrow band substantially transmitting said first polarization component when a spacing distance of said first and second SWS substantially equals an integer number of half optical wavelengths of said incident light, and substantially transmitting a second polarization component of said incident light over an entire width of said broad band.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] The United States Government has rights in this invention pursuant to Contract No. DE-AC05-00OR22725 between the United States Department of Energy and UT-Battelle, LLC.