Claims
- 1. An optical device comprising a waveguide structure formed by a strip (100) of material having a relatively high free charge carrier density surrounded by material having a relatively low free charge carrier density, the strip having finite width (W) and thickness (t) of the same order with dimensions such that optical radiation having a wavelength in a predetermined range couples to the strip and propagates along the length of the strip as a plasmon-polariton wave.
- 2. A device according to claim 1, further comprising at least one additional said waveguide structure comprising a second said strip (108), wherein the second strip (108) is curved and the first-mentioned strip (100) is offset outwardly (O1,O2) relative to an axis of curvature of the second strip (108).
- 3. A device according to claim 2, wherein the first (100) and second (108) strips are separate and juxtaposed with one end of the first strip adjacent an end of the second strip that is offset outwardly (O1,O2) relative to the end of the first strip.
- 4. A device according to claim 2, wherein said first (100) and second (108) strips are integral with each other.
- 5. A device according to claim 1, further comprising a plurality of branch waveguide structures of similar construction to the first waveguide structure, wherein the plurality of branch waveguide structures comprise a plurality of branch strips (104; 108), respectively, having ends coupled to an end portion of the first-mentioned strip (100;102;104;106;130) thereby forming a combiner/spliner (110;116), the arrangement being such that said optical radiation leaving said first-mentioned strip via said one end portion will be split between said plurality of branch strips and conversely optical radiation coupled to said one end portion by said plurality of branch strips will be combined to leave said first-mentioned strip by an opposite end.
- 6. A device according to claim 5, wherein the branch strips (104;108) are integral with the first strip (100;102;104;106;130).
- 7. A device according to claim 5, wherein branch strips (104;108) are distinct from the first strip (100;102;104,106;130).
- 8. A device as according to claim 1, further comprising a first plurality of branch waveguide structures each similar in construction to the first waveguide structure and having a corresponding plurality of branch strips forming a splitter (110;116), and a second plurality of waveguide structures similar to the first waveguide structure and comprising a second plurality of branch waveguide structures similar in construction to the first waveguide structure, and comprising a corresponding second plurality of branch strips, and an output waveguide structure similar in construction to the first waveguide structure and having an output strip coupled to respective ends of the second plurality of branch strips to form a combiner (110;116), the splitter and combiner having their respective branch strips connected together to form a Mach-Zehnder interferometer (118;120), the arrangement being such that optical radiation input via said input strip produces a plasmon-polariton wave portion propagating along each of said first plurality of branch strips sections, the plasmon- polariton waves being coupled to the second plurality of branch strips and recombined to propagate along said output strip.
- 9. A device according to claim 8, further comprising means (122,124,126) associated with at least one of the branch strips for adjusting the propagation characteristics of at least one of said plasmon-polariton waves as it propagates along the branch strip.
- 10. A device according to claim 9, wherein the adjusting means (122,124,126) are arranged to modulate said propagation characteristics so as to obtain destructive interference upon recombination and thereby modulate the intensity of said optical radiation.
- 11. A device according to claim 10, wherein the adjusting means comprises at least one electrode (112;122,124) adjacent said at least one of said branch strips (100;110) and a voltage source (126) for providing a potential difference between the electrode and the branch strip.
- 12. A device according to claim 11, wherein the surrounding material is eletro-optic (114).
- 13. A device according to claim 10, wherein the material around said at least one of the branch strips is an electro-optic material and the adjusting means comprises a pair of electrodes (112A,112B;122,124) one each side of the strip (100) and a voltage source (126) connected to the electrodes for providing a potential difference therebetween.
- 14. A device according to claim 10, wherein the adjusting means is arranged to induce a magnetic field in the strip (100;110).
- 15. A device according to claim 14, wherein the adjusting means comprises a coil formed by metal-placed via holes and surface conductors.
- 16. A device according to claim 14, wherein the adjusting means comprises a solenoid having magnetic poles either side of the strip.
- 17. A device according to claim 1, comprising at least a second said waveguide structure, the first-mentioned and second waveguide structures forming a coupler, respective said strips (100″) of the first and second waveguide structures being disposed with their adjacent edges in close proximity such that at least some of said plasmon-polariton wave propagating along one of said strips will couple onto the other of the strips.
- 18. A device according to claim 17, further comprising means (126) for adjusting the propagation characteristic of said plasmon-polariton wave propagating along the coupled strips so as to control the degree of coupling between the strips.
- 19. A device according to claim 17, wherein the material between the coupled strips is electro-optic and further comprising means (126) for applying an electric field to the material to adjust the refractive index thereof.
- 20. A device according to claim 17, wherein the first and second strips are not coplanar.
- 21. A device according to claim 1, comprising at least three of said waveguide structures (104) arranged to form a waveguide intersection (142), their respective strips each having one end connected to the other strips to form said intersection, distal ends of the three strips constituting ports such that optical radiation input via the distal end of one of the strips will be conveyed across the intersection to emerge from one or both of the other strips.
- 22. A device according to any of claims 1 to 21, wherein the surrounding material is inhomogeneous.
- 23. A device according to claim 22, wherein the surrounding material comprises a combination of slabs, strips, laminae or continuously variable material composition.
- 24. An optical device according to claim 1, wherein the material comprises two distinct portions with the strip extending therebetween, at least one of the two distinct portions having at least one variable electromagnetic property, and that the device further comprises means for varying the value of said electromagnetic property of said one of the portions so as to vary the propagation characteristics of the plasmon-polariton wave.
- 25. A device according to claim 24, wherein, for one said value of the electromagnetic property for said one of the portions propagation of the plasmon-polariton wave is supported and for another value of said electromagnetic property of said one of said portions propagation of the plasmon-polariton wave is at least inhibited.
- 26. A device according to claim 24, wherein said means for varying the electromagnetic property changes the size of at least one of said portions.
- 27. A device according to claim 24, wherein one of said portions is a fluid.
- 28. A device according to claim 24, wherein said electromagnetic property is permittivity and the varying means (116;116A;116B;116C;116E) varies the permittivity by inducing a change in one or more of an electrical field in material of said portion, magnetic field in material of said portion, mechanical strain in material of said portion, and temperature in the material of said portion.
- 29. A device according to claim 24, wherein said electromagnetic property is a permeability and the varying means varies the permeability by inducing a change in one or more of a magnetic field in material of said portion, mechanical strain in the material of said portion, and temperature in the material of said portion.
- 30. A device according to claim 29, wherein the varying means comprises a coil formed by metal-plated via holes and surface conductors.
- 31. A device according to claim 30, wherein the varying means comprises a solenoid having magnetic poles either side of the strip.
- 32. A device according to claim 24, wherein the material is electro-optic and the varying means comprises an electrode (112) overlying or underlying said one of said portions and means for applying a potential difference between the electrode and the strip.
- 33. A device according to claim 24, wherein the material of at least said first portion is electro-optic and the varying means comprises first and second electrodes overlying and underlying, respectively, the strip, said at least one of the two distinct portions being between the first electrode and the strip and the other of said portions being between the second electrode and the strip, and means for applying a potential difference between the strip and said first electrode.
- 34. A device according to claim 33, wherein the second of said two distinct portions also comprises an electro-optic material and the applying means comprises a first voltage source for applying a first potential difference between the strip and the first electrode and a second voltage source for applying a second potential difference between the strip and the second electrode.
- 35. A device according to claim 33, wherein the applying means comprises means for coupling one terminal of a voltage source to the strip and a second terminal of the voltage source in common to the first and second electrodes.
- 36. A device according to claim 24, wherein the first portion comprises electro-optic material and the varying means comprises first and second electrodes overlying and underlying, respectively, the strip and means for applying a potential difference between the first and second electrodes.
- 37. A device according to any of claims 36, wherein both said portions comprise electro-optic material.
- 38. A device according to claim 24, wherein the material is electro-optic, the strip is embedded in the material with the said one-of the portions adjacent one surface of the strip, and the varying means comprises first and second electrodes disposed laterally of the strip at opposite sides of said one of said portions and means of applying a potential difference between the electrodes, the other of said portions being adjacent an opposite surface of the strip.
- 39. A device according to claim 24, wherein the material is magneto-optic and the varying means comprises means for establishing a current flowing in at least one of the strip and an adjacent electrode, the said one of the portions being between the electrode and the strip.
- 40. A device according to claim 24, wherein the material is thermo-optic, at least one electrode is provided adjacent to the strip with said one of the portions therebetween, and the varying means comprises means for establishing a temperature difference between the strip and the electrode.
- 41. A device according to claim 24, further comprising a plurality of waveguide structures similar in construction to the first-mentioned structure and each comprising one of a plurality of said strips, the plurality of strips having respective proximal ends juxtaposed to one end of the first-mentioned strip to form a combiner/splitter, the arrangement being such that said optical radiation leaving said first-mentioned strip via said one end will be split between said plurality of strips and conversely said optical radiation coupled to said one end by said plurality of strips will be combined to leave said first-mentioned strip by an opposite end, wherein the varying means is coupled to at least one of the plurality of strips.
- 42. A device according to claim 41, wherein the material is electro-optic and the waveguide structures comprise an input strip for receiving said optical radiation at one end thereof and end-coupled to a splitter at an opposite end thereof, first and second branch strips each having a proximal end coupled to the splitter for receiving a portion of the radiation, the varying means comprising an electrode adjacent a respective one of the branch strips with said one of the portions therebetween and means for applying a potential difference between the electrode and said one of the branch strips.
- 43. A device according to claim 42, wherein the varying means further comprises a second electrode adjacent the other branch strip with a second one of said portions therebetween and means for applying a second potential difference between the second electrode and the second branch strip.
- 44. A device according to claim 41, wherein the material is magneto-optic and the waveguide structures comprise an input strip for receiving said optical radiation at one end thereof and end-coupled to a splitter at an opposite end thereof, first and second branch strips each having a proximal end coupled to the splitter for receiving a portion of the radiation, the varying means comprising an electrode adjacent a respective one of the branch strips with said one of the portions therebetween and means for establishing a current flowing in said electrode and said one of the branch strips.
- 45. A device according to claim 44, wherein the varying means further comprises a second electrode adjacent the other branch strip with a second one of said portions therebetween and means for establishing a second current flowing in the second electrode and the second branch strip.
- 46. A device according to claim 41, wherein the varying means comprises a coil formed by metal-plated via holes and surface conductors.
- 47. A device according to claim 41, wherein the varying means comprises a solenoid having magnetic poles either side of the strip.
- 48. A device according to claim 41, wherein the material is thermo-optic and the waveguide structures comprise an input strip for receiving said optical radiation at one end thereof and end-coupled to a splitter at an opposite end thereof, first and second branch strips each having a proximal end coupled to the splitter for receiving a portion of the radiation, the varying means comprising an electrode adjacent a respective one of the branch strips with said one of the portions therebetween and means for establishing a temperature difference between said electrode and said one of the branch strips.
- 49. A device according to claim 48, wherein the varying means further comprises a second electrode adjacent the other branch strip with a second one of said portions therebetween and means for establishing a second temperature difference between the second electrode and the second branch strip.
- 50. A device according to claim 1, wherein the strip (100;104;106;108,130) is straight, curved, bent, or tapered.
- 51. An optical device according to claim 1, wherein said free charge carrier density of the surrounding material is substantially negligible.
- 52. An optical device according to claim 1, wherein the strip is inhomogeneous.
- 53. An optical device according to claim 1, wherein the strip comprises an electron gas-supporting region.
- 54. A device according to claim 1, wherein the strip is selected from the group including gold, silver, copper, aluminium and highly n- or p-doped GaAs, InP or Si.
- 55. A device according to claim 1, wherein said material is selected from the group including glass, quartz, polymer and undoped or lightly doped GaAs, InP or Si.
- 56. A device according to claim 1, wherein said strip is gold and said material is silicon dioxide.
- 57. A device according to claim 1, for optical radiation having a free-space wavelength near 1550 nm, wherein the strip comprises a metal and has substantially square cross-section of thickness and width less than about 300 nm.
- 58. A device according to claim 1, wherein the width and thickness of the strip are each in the range from about 40 nm to about 1000 nm such that optical radiation having a wavelength in the range from about 500 nm to about 10,000 nm couples to the strip and propagates along the length of the strip as a plasmon-polariton wave.
- 59. A device according to claim 58, wherein the width and thickness of the strip are each in the range from about 40 nm to about 70 nm such that optical radiation having a wavelength about 500 nm couples to the strip and propagates along the length of the strip as a plasmon-polariton wave.
- 60. A device according to claim 58, wherein the width and thickness of the strip are each in the range from about 500 nm to about 2,000 nm such that optical radiation having a wavelength about 10,000 nm couples to the strip and propagates along the length of the strip as a plasmon-polariton wave.
- 61. A device according to claim 56, wherein the strip (100) comprises gold and has a thickness of about 180 nm and width of about 180 nm.
- 62. A device according to claim 54, wherein the strip (100) comprises aluminium and has a thickness of about 200 nm and width of about 200 nm, the surrounding material being SiO2.
- 63. An optical device according to claim 51, wherein the strip comprises a sandwich of different metals.
- 64. An optical device according to claim 63, wherein the strip comprises a layer of gold sandwiched between layers of titanium and/or molybdenum.
- 65. A device according to claim 1, wherein the material of at least one of the portions is inhomogeneous.
- 66. A device according to claim 22, wherein the material of at least one of the portions comprises a combination of slabs, strips, laminae, or continuously variable material composition.
- 67. A device according to claim 1, wherein the strip comprises a plurality of layers or a continuously variable material composition.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from United States Provisional patent application serial No. 60/299,732 filed Jun. 22,. 2001 and is a Continuation-in-Part of application Ser. No. 09/629,816 filed Jul. 31, 2000 and a Continuation-in-Part of application Ser. No. 09/742,422 filed Dec. 22, 2000. The contents of these three applications are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60299732 |
Jun 2001 |
US |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
09629816 |
Jul 2000 |
US |
Child |
10177621 |
Jun 2002 |
US |
Parent |
09742422 |
Dec 2000 |
US |
Child |
10177621 |
Jun 2002 |
US |