Carbon Structures with Three-Dimensional Periodicity at Optical Wavelengths

Author:

Zakhidov Anvar A.1,Baughman Ray H.1,Iqbal Zafar1,Cui Changxing1,Khayrullin Ilyas1,Dantas Socrates O.1,Marti Jordi1,Ralchenko Victor G.1

Affiliation:

1. A. A. Zakhidov and I. Khayrullin are at AlliedSignal, Incorporated, Research and Technology, Morristown, NJ 07962–1021, USA, and in the Department of Thermal Physics of the Uzbekistan Academy of Sciences, Katartal 28, Tashkent, Uzbekistan. R. H. Baughman, Z. Iqbal, C. Cui, and J. Marti are at AlliedSignal, Incorporated, Research and Technology, Morristown, NJ 07962–1021, USA. S. O. Dantas is in the Departamento de Fı́sica, Universidade Federal de Juiz de Fara, Juiz de Fora, 36036-330, MG, Brazil. V....

Abstract

Porous carbons that are three-dimensionally periodic on the scale of optical wavelengths were made by a synthesis route resembling the geological formation of natural opal. Porous silica opal crystals were sintered to form an intersphere interface through which the silica was removed after infiltration with carbon or a carbon precursor. The resulting porous carbons had different structures depending on synthesis conditions. Both diamond and glassy carbon inverse opals resulted from volume filling. Graphite inverse opals, comprising 40-angstrom-thick layers of graphite sheets tiled on spherical surfaces, were produced by surface templating. The carbon inverse opals provide examples of both dielectric and metallic optical photonic crystals. They strongly diffract light and may provide a route toward photonic band-gap materials.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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