Issue 38, 2012

Nanoscale engineering of radiation tolerant silicon carbide

Abstract

Radiation tolerance is determined by how effectively the microstructure can remove point defects produced by irradiation. Engineered nanocrystalline SiC with a high-density of stacking faults (SFs) has significantly enhanced recombination of interstitials and vacancies, leading to self-healing of irradiation-induced defects. While single crystal SiC readily undergoes an irradiation-induced crystalline to amorphous transformation at room temperature, the nano-engineered SiC with a high-density of SFs exhibits more than an order of magnitude increase in radiation resistance. Molecular dynamics simulations of collision cascades show that the nano-layered SFs lead to enhanced mobility of interstitial Si atoms. The remarkable radiation resistance in the nano-engineered SiC is attributed to the high-density of SFs within nano-sized grain structures that significantly enhance point defect annihilation.

Graphical abstract: Nanoscale engineering of radiation tolerant silicon carbide

Article information

Article type
Paper
Submitted
10 Jul 2012
Accepted
09 Aug 2012
First published
14 Aug 2012

Phys. Chem. Chem. Phys., 2012,14, 13429-13436

Nanoscale engineering of radiation tolerant silicon carbide

Y. Zhang, M. Ishimaru, T. Varga, T. Oda, C. Hardiman, H. Xue, Y. Katoh, S. Shannon and W. J. Weber, Phys. Chem. Chem. Phys., 2012, 14, 13429 DOI: 10.1039/C2CP42342A

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