Claims
- 1. Cyclic olefin polymeric nanocomposite optical article, comprises: an optically transparent cyclic olefin polymeric host material suitable for use in an optical article, said cyclic olefin polymeric host material having a temperature sensitive optical vector x1 and nanoparticles dispersed in said cyclic olefin polymeric host material having a temperature sensitive optical vector x2, wherein said temperature sensitive optical vector x1 is directionally opposed to said temperature sensitive optical vector x2.
- 2. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 1 wherein each of said temperature sensitive optical vectors x1 and x2 are defined by a change in refractive index (dn) of said cyclic olefin polymeric host material and said nanoparticles, respectively, with respect to a change in temperature (dT).
- 3. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 1 wherein said temperature sensitive optical vector x1 has a negative value in the range of about 102×10−6/degree C. and 110×10−6/degree C. and, wherein said temperature sensitive optical vector x2 has a positive value of greater than about 6×10−6/degree C. and less than about 50×10−6/degree C.
- 4. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 1 wherein said nanoparticles are magnesium oxide.
- 5. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 1 wherein said nanoparticles are aluminum oxide.
- 6. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 3 wherein said nanoparticles are calcium carbonate.
- 7. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 4 wherein said cyclic olefin polymeric host material comprises a predetermined volume (%) of said magnesium oxide nanoparticles to reduce said temperature sensitive optical vector x1 by about 50%, said predetermined volume being determined by the equation:v50=0.5(γp/γp−γn); wherein v50 is the volume % of said magnesium oxide nanoparticles needed to reduce the dn/dT of said cyclic olefin polymeric nanocomposite optical plastic article by 50% compared to the cyclic olefin polymeric host material; γp is the dn/dT of said cyclic olefin polymeric host material; and γn is the dn/dT of said magnesium oxide nanoparticles.
- 8. The cyclic olefin polymeric nanocomposite optical plastic article recited in claim 7 wherein said predetermined volume (%) of said magnesium oxide nanoparticles dispersed in said cyclic olefin polymeric host material is about 43%.
- 9. A method of manufacturing a cyclic olefin polymeric nanocomposite optical plastic article, comprising the steps of:(a) providing an optically transparent cyclic olefin polymeric host material suitable for use in an optical article having a temperature sensitive optical vector x1 and nanoparticles having a temperature sensitive optical vector x2,, wherein said temperature sensitive optical vector x1 is directionally opposed to said temperature sensitive optical vector x2; (b) dispersing said nanoparticles into said cyclic olefin polymeric host material forming a cyclic olefin polymeric nanocomposite material; and, (c) forming said cyclic olefin polymeric nanocomposite material into said cyclic olefin polymeric nanocomposite optical plastic article.
CROSS-REFERENCE TO RELATED APPLICATIONS
The present application is related to U.S. application Ser. No. 09/748,634, filed Dec. 22, 2000, by Border, et al., and entitled, “Polymethylmethacrylate Nanocomposite Optical Plastic Article And Method Of Making Same,” U.S. application Ser. No. 09/747,705, filed Dec. 22, 2000, by Border, et al., and entitled, “Reduced Temperature Sensitive Polymeric Optical Article And Method Of Making Same;” U.S. application Ser. No. 09/748,636, filed Dec. 22, 2000, by Border, et al., and entitled, “Polystyrene Nanocomposite Optical Plastic Article And Method Of Making Same;” U.S. application Ser. No. 09/747,706, filed Dec. 22, 2000, by Border, et al., and entitled, “Polycarbonate Nanocomposite Optical Plastic Article And Method Of Making Same;” U.S. application Ser. No. 09/747,707, now U.S. Pat. No. 6,441,077 filed Dec. 22, 2000, by Border, et al., and entitled, “Polysulfone Nanocomposite Optical Plastic Article And Method Of Making Same.”
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