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Rational Design of Advanced Thermoelectric Materials

机译:先进热电材料的合理设计

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摘要

Advanced thermoelectric technologies can drastically improve energy efficiencies of industrial infrastructures, solar cells, automobiles, aircrafts, etc. When a thermoelectric device is used as a solid-state heat pump and/or as a power generator, its efficiency depends pivotally on three fundamental transport properties of materials, namely, the thermal conductivity, electrical conductivity, and thermopower. The development of advanced thermoelectric materials is very challenging because these transport properties are interrelated. This paper reviews the physical mechanisms that have led to recent material advances. Progresses in both inorganic and organic materials are summarized. While the majority of the contemporary effort has been focused on lowering the lattice thermal conductivity, the latest development in nanocomposites suggests that properly engineered interfaces are crucial for realizing the energy filtering effect and improving the power factor. We expect that the nanocom-posite approach could be the focus of future materials breakthroughs.
机译:先进的热电技术可以大大提高工业基础设施,太阳能电池,汽车,飞机等的能源效率。当将热电设备用作固态热泵和/或发电机时,其效率主要取决于三个基本方面材料的特性,即热导率,电导率和热功率。先进的热电材料的开发非常具有挑战性,因为这些传输特性是相互关联的。本文回顾了导致近期物质进步的物理机制。总结了无机和有机材料的研究进展。尽管当代的大多数努力都集中在降低晶格导热性上,但是纳米复合材料的最新发展表明,正确设计的界面对于实现能量过滤效果和提高功率因数至关重要。我们期望纳米复合材料方法可能成为未来材料突破的重点。

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  • 来源
    《Advanced energy materials》 |2013年第5期|549-565|共17页
  • 作者单位

    Department of Materials Science and Engineering Box 352120, University of Washington Seattle, WA 98195-2120 USA;

    Department of Materials Science and Engineering Box 352120, University of Washington Seattle, WA 98195-2120 USA;

    Department of Materials Science and Engineering Box 352120, University of Washington Seattle, WA 98195-2120 USA;

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