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能源材料计算研究进展。

Advances in computational studies of energy materials.

机构信息

Department of Chemistry, Materials Chemistry, 3rd Floor, Kathleen Lonsdale Building, University College London, , Gower Street, London WC1E 6BT, UK.

出版信息

Philos Trans A Math Phys Eng Sci. 2010 Jul 28;368(1923):3379-456. doi: 10.1098/rsta.2010.0111.

Abstract

We review recent developments and applications of computational modelling techniques in the field of materials for energy technologies including hydrogen production and storage, energy storage and conversion, and light absorption and emission. In addition, we present new work on an Sn2TiO4 photocatalyst containing an Sn(II) lone pair, new interatomic potential models for SrTiO3 and GaN, an exploration of defects in the kesterite/stannite-structured solar cell absorber Cu2ZnSnS4, and report details of the incorporation of hydrogen into Ag2O and Cu2O. Special attention is paid to the modelling of nanostructured systems, including ceria (CeO2, mixed Ce(x)O(y) and Ce2O3) and group 13 sesquioxides. We consider applications based on both interatomic potential and electronic structure methodologies; and we illustrate the increasingly quantitative and predictive nature of modelling in this field.

摘要

我们回顾了计算建模技术在能源技术材料领域的最新发展和应用,包括制氢和储氢、能量存储和转换以及光吸收和发射。此外,我们还介绍了 Sn2TiO4 光催化剂中含有 Sn(II)孤对电子、SrTiO3 和 GaN 的新原子间势模型、kesterite/stannite 结构太阳能电池吸收剂 Cu2ZnSnS4 中缺陷的探索以及氢融入 Ag2O 和 Cu2O 的详细情况。特别关注纳米结构系统的建模,包括氧化铈(CeO2、混合 Ce(x)O(y) 和 Ce2O3)和第 13 族 sesquioxides。我们考虑了基于原子间势和电子结构方法的应用;并说明了该领域建模的日益定量和预测性质。

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