Optimized Thermoelectric Properties of Sb-Doped Mg2(1+z)Si0.5–ySn0.5Sbythrough Adjustment of the Mg Content
作者:Wei Liu, Xinfeng Tang, Han Li, Jeff W. Sharp, Xiaoyuan Zhou, Ctirad Uher · 发表于:Chemistry of Materials · 年份:2011 · DOI:10.1021/cm202445d · 被引用次数:160 · 研究领域:Advanced Thermoelectric Materials and Devices、Thermal Expansion and Ionic Conductivity、Thermal properties of materials
Mg 2 Si 1– x Sn x compounds are low-cost and environmentally friendly thermoelectric materials expected to be applied as power generators in the intermediate temperature range. Optimization of the thermoelectric properties of Mg 2 Si 1– x Sn x compounds can be accomplished by the precise control and adjustment of the Mg content. A series of Mg 2(1+ z ) Si 0.5– y Sn 0.5 Sb y (0 ≤ y ≤ 0.015 and 0 ≤ z ≤ 0.15) compounds with controlled Mg content were synthesized by a two-step solid-state reaction method, followed by a spark plasma sintering technique. On the basis of optimized thermoelectric properties via doping with Sb, the effect of a variable content of Mg spanning from understoichiometry to overstoichiometry has been systematically explored. The results indicate that when the actual Mg content exceeds the stoichiometric amount, the dominant point defects in Mg 2(1+ z ) Si 0.49 Sn 0.5 Sb 0.01 compounds are interstitial Mg and Si/Sn vacancies. At the same time, the electron concentration is enhanced with increasing content of Mg. However, when the actual Mg content is substoichiometric, the point defects consist mainly of Mg vacancies that tend to counteract the doping effect of Sb. Thus, the electron concentration of the nominal Mg 2 Si 0.49 Sn 0.5 Sb 0.01 compound (in reality a 2 mol % deficiency of Mg) is markedly lower compared with the Mg 2.10 Si 0.49 Sn 0.5 Sb 0.01 compound, which actually had a 2 mol % excess of Mg. Furthermore, a modest overstoichiometry of Mg enhance...