Claims
        
                - 1. A method for producing an optical waveguide comprising the steps of: 
(a) forming a core structure, said core structure comprising an at least partially cured core composition, on a master defining a waveguide pattern; (b) applying over the core structure and the master a cladding layer comprising a liquid cladding composition; (c) curing said cladding layer to form a core/cladding combination; and (d) removing the core/cladding combination from the master so as to expose at least a portion of the core structure, wherein the refractive index of the cured core composition is at least 0.05 percent higher than the refractive index of the cured cladding composition.
 
                - 2. The method of claim 1, comprising curing the core structure in step (a).
 
                - 3. The method of claim 1, comprising partially curing the core structure in step (a) and curing the core structure in step (c).
 
                - 4. The method of claim 1, wherein said step of forming a core structure comprises the steps of: 
applying core composition onto the master to fill the waveguide pattern; striking off excess core composition from the master; vaporizing residual core composition from lands defined by the master; and at least partially curing the remaining core composition.
 
                - 5. The method of claim 1, wherein said step of forming a core structure comprises the steps of: 
applying a core composition to a master defining a waveguide core pattern to fill said waveguide core pattern; removing a portion of said core composition from an exposed surface of the filled waveguide pattern; and at least partially curing the core composition.
 
                - 6. The method of claim 5, wherein said removing step comprises vaporizing said portion of said core composition.
 
                - 7. The method of claim 5, wherein said removing step comprises treating the filled surface of the master with a metering bar.
 
                - 8. The method of claim 1, further comprising the step of: 
(e) forming a second cladding layer over the exposed portion of the core structure, thereby burying the core structure.
 
                - 9. The method of claim 1, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 10. The method of claim 1, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 11. An optical waveguide produced according to any one of claims 1 to 10.
 
                - 12. A method for producing an optical waveguide core structure comprising the steps of: 
(a) applying a core composition to a substrate defining a waveguide core pattern; (b) removing a portion of said core composition from an exposed surface of the filled waveguide core pattern; and (c) at least partially curing the core composition to form a core structure.
 
                - 13. The method of claim 12, wherein said removing step comprises vaporizing said portion of said core composition.
 
                - 14. The method of claim 12, wherein said removing step comprises treating the filled surface of the substrate with a metering bar.
 
                - 15. The method of claim 12, wherein said core composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 16. The method of claim 12, wherein said core composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 17. An optical waveguide core structure produced according to any one of claims 12 to 16.
 
                - 18. A method for producing an optical waveguide, comprising producing an optical waveguide core structure according to claim 12 wherein said substrate comprises a master, and further comprising the steps of: 
(d) forming a layer of cladding material over the top of the core structure and the master to form a core/cladding combination; and (e) removing the core/cladding combination from the master so as to expose at least a portion of the core structure; wherein the refractive index of the cured core composition is at least 0.05 percent higher than the refractive index of the cladding material.
 
                - 19. The method of claim 18, wherein said forming step comprises applying over the top of the core structure and the master a liquid cladding composition and curing the cladding composition.
 
                - 20. The method of claim 18, comprising partially curing said core composition in step (c) and curing said core composition when curing said cladding composition.
 
                - 21. The method of claim 18, wherein said forming step comprises laminating an at least partially cured cladding layer over the top of the core structure and the master.
 
                - 22. The method of claim 18, further comprising the step of: 
(f) forming a second cladding layer over the exposed portion of the core structure, thereby burying the core structure.
 
                - 23. The method of claim 18, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 24. The method of claim 18, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 25. An optical waveguide produced according to any one of claims 18 to 24.
 
                - 26. A method of producing an optical waveguide, comprising producing an optical waveguide core structure according to claim 12, wherein said substrate comprises a cladding material and the refractive index of the cured core composition is at least 0.05 percent higher than the refractive index of the cladding material.
 
                - 27. The method of claim 26, further comprising the step of: 
(d) forming a second cladding layer over the exposed portion of the core structure, thereby burying the core structure.
 
                - 28. The method of claim 27, wherein said forming step comprises laminating an at least partially cured cladding layer over the top of the core structure and the substrate.
 
                - 29. The method of claim 27, wherein said forming step comprises applying over the top of the core structure and the substrate a liquid cladding composition and curing the cladding composition.
 
                - 30. The method of claim 26, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 31. The method of claim 26, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 32. An optical waveguide produced according to any one of claims 26 to 31.
 
                - 33. A method for producing an optical waveguide core structure comprising the steps of: 
(a) applying a core composition to a substrate defining a waveguide core pattern, thereby filling said waveguide core pattern; (b) removing residual core composition from lands defined by the substrate; and (c) at least partially curing said core composition to form a core structure.
 
                - 34. A method of producing an optical waveguide, comprising producing an optical waveguide core structure according to claim 33, wherein said substrate comprises a cladding material and the refractive index of the cured core composition is at least 0.05 percent higher than the refractive index of the cladding material.
 
                - 35. The method of claim 34, further comprising the step of: 
(d) forming a second cladding layer over the exposed portion of the core structure, thereby burying the core structure.
 
                - 36. The method of claim 35, wherein said forming step comprises laminating an at least partially cured cladding layer over the top of the core structure and the substrate.
 
                - 37. The method of claim 35, wherein said forming step comprises applying over the top of the core structure and the substrate a liquid cladding composition and curing the cladding composition.
 
                - 38. An optical waveguide produced according to any one of claims 34 to 37.
 
                - 39. The method of claim 33, wherein said core composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 40. The method of claim 33, wherein said core composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 41. A method of producing an optical waveguide, comprising producing an optical waveguide core structure according to claim 33 wherein said substrate comprises a master, and further comprising the steps of: 
(d) forming a layer of cladding material over the top of the core structure and the master to form a core/cladding combination, and (e) removing the core/cladding combination from the master so as to expose at least a portion of the core structure, wherein the refractive index of the cured core composition is at least 0.05 percent higher than the refractive index of the cladding material.
 
                - 42. The method of claim 41, wherein said forming step comprises applying over the top of the core structure and the master a liquid cladding composition and curing the cladding composition.
 
                - 43. The method of claim 42, comprising partially curing said core composition in step (c) and curing said core composition when curing said cladding composition.
 
                - 44. The method of claim 41, wherein said forming step comprises laminating an at least partially cured cladding layer over the top of the core structure and the master.
 
                - 45. The method of claim 41, further comprising the step of: 
(f) forming a second cladding layer over the exposed portion of the core structure, thereby burying the core structure.
 
                - 46. The method of claim 41, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 47. The method of claim 41, wherein at least one of said core composition and said cladding composition comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 48. An optical waveguide produced according to any one of claims 41 to 47.
 
                - 49. A method for producing an optical waveguide comprising the steps of: 
(a) forming a film comprising a layer of core material and a layer of cladding material; and (b) forming a waveguide feature in a core layer of the film, wherein the refractive index of the core material is at least 0.05 percent higher than the refractive index of the cladding material.
 
                - 50. The method of claim 49, comprising producing the waveguide feature formed in step (b) by using a displacement technique.
 
                - 51. The method of claim 50, wherein the waveguide feature formed in step (b) is produced by laser ablation, diamond cutting, or hot embossing.
 
                - 52. The method of claim 51, wherein the waveguide feature formed in step (b) is produced by laser ablation.
 
                - 53. The method of claim 49, further comprising the step of: 
(c) forming a second layer of cladding material over an exposed surface of a core layer.
 
                - 54. The method of claim 49, wherein at least one of said core material and said cladding material comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one co-catalyst, wherein polymerization is achieved by the addition of at least one pro-catalyst.
 
                - 55. The method of claim 49, wherein at least one of said core material and said cladding material comprises at least one norbornene-type monomer and/or at least one crosslinking monomer and at least one pro-catalyst, wherein polymerization is achieved by the addition of at least one co-catalyst.
 
                - 56. An optical waveguide produced according to any one of claims 49 to 55.
 
        
                
                        CROSS REFERENCE TO RELATED APPLICATIONS
        [0001] The benefit under 35 U.S.C. §119 (e) is claimed based on provisional application Serial No. 60/221,420, filed Jul. 28, 2000, and No. 60/252,251, filed Nov. 21, 2000, the entire respective disclosures of which are hereby incorporated by reference.
                
                
                
                        Provisional Applications (2)
        
            
                
                     | 
                    Number | 
                    Date | 
                    Country | 
                
            
            
    
         | 
            60221420 | 
        Jul 2000 | 
        US | 
    
    
         | 
            60252251 | 
        Nov 2000 | 
        US |