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能源材料的三维微观结构成像方法。

Three-dimensional microstructural imaging methods for energy materials.

机构信息

Department of Mechanical Engineering, University of Connecticut, Storrs, CT 06269-3139, USA.

出版信息

Phys Chem Chem Phys. 2013 Oct 21;15(39):16377-407. doi: 10.1039/c3cp52356j. Epub 2013 Aug 5.

Abstract

Advances in the design of materials for energy storage and conversion (i.e., "energy materials") increasingly rely on understanding the dependence of a material's performance and longevity on three-dimensional characteristics of its microstructure. Three-dimensional imaging techniques permit the direct measurement of microstructural properties that significantly influence material function and durability, such as interface area, tortuosity, triple phase boundary length and local curvature. Furthermore, digital representations of imaged microstructures offer realistic domains for modeling. This article reviews state-of-the-art methods, across a spectrum of length scales ranging from atomic to micron, for three-dimensional microstructural imaging of energy materials. The review concludes with an assessment of the continuing role of three-dimensional imaging in the development of novel materials for energy applications.

摘要

储能和转换材料(即“能源材料”)的设计进展越来越依赖于理解材料性能和寿命对其微观结构三维特征的依赖性。三维成像技术允许直接测量对材料功能和耐久性有重大影响的微观结构特性,例如界面面积、曲折度、三相界长度和局部曲率。此外,成像微观结构的数字表示为建模提供了现实的域。本文综述了从原子到微米的一系列长度尺度范围内,对能源材料的三维微观结构成像的最新方法。该综述最后评估了三维成像在开发新型能源应用材料方面的持续作用。

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