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1.
Opt Express ; 20(13): 14189-200, 2012 Jun 18.
Artigo em Inglês | MEDLINE | ID: mdl-22714482

RESUMO

During high-velocity atmospheric entries, space vehicles can be exposed to strong electromagnetic radiation from ionized gas in the shock layer. Glassy carbon (GC) and silicon carbide (SiC) are candidate thermal protection materials due to their high melting point and also their good thermal and mechanical properties. Based on data from shock tube experiments, a significant fraction of radiation at hypersonic entry conditions is in the frequency range from 215 to 415 THz. We propose and analyze SiC and GC photonic structures to increase the reflection of radiation in that range. For this purpose, we performed numerical optimizations of various structures using an evolutionary strategy. Among the considered structures are layered, porous, woodpile, inverse opal and guided-mode resonance structures. In order to estimate the impact of fabrication inaccuracies, the sensitivity of the reflectivity to structural imperfections is analyzed. We estimate that the reflectivity of GC photonic structures is limited to 38% in the aforementioned range, due to material absorption. However, GC material can be effective for photonic reflection of individual, strong spectral line. SiC on the other hand can be used to design a good reflector for the entire frequency range.


Assuntos
Compostos Inorgânicos de Carbono/química , Carbono/química , Radiação Cósmica , Proteção Radiológica/instrumentação , Refratometria/instrumentação , Compostos de Silício/química , Astronave/instrumentação , Atmosfera , Campos Eletromagnéticos , Desenho de Equipamento , Análise de Falha de Equipamento , Vidro/química , Luz , Espalhamento de Radiação
2.
Opt Express ; 19(6): 5489-99, 2011 Mar 14.
Artigo em Inglês | MEDLINE | ID: mdl-21445187

RESUMO

A multilayer approach (MA) and modified boundary conditions (MBC) are proposed as fast and efficient numerical methods for the design of 1D photonic structures with rough interfaces. These methods are applicable for the structures, composed of materials with an arbitrary permittivity tensor. MA and MBC are numerically validated on different types of interface roughness and permittivities of the constituent materials. The proposed methods can be combined with the 4x4 scattering matrix method as a field solver and an evolutionary strategy as an optimizer. The resulted optimization procedure is fast, accurate, numerically stable and can be used to design structures for various applications.

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