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Enhanced Thermoelectric Performance at the Superionic Phase Transitions of Mixed Ion-Electron Conducting Materials.

机译:混合离子电子导电材料在超离子相变处的增强的热电性能。

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摘要

The quality of a thermoelectric material is judged by the size of its temperature dependent thermoeletric-figure-of-merit (zT). Superionic materials, particularly Zn4Sb3 and Cu 2Se, are of current interest for the high zT and low thermal conductivity of their disordered, superionic phase. In this work it is reported that the super-ionic materials Ag2Se, Cu2Se and Cu1.97Ag0.03Se show enhanced zT in their ordered, normal ion-conducting phases. The zT of Ag2Se is increased by 30% in its ordered phase as compared to its disordered phase, as measured just below and above its first order phase transition. The zT's of Cu2Se and Cu 1.97Ag0.03Se both increase by more than 100% over a 30 K temperatures range just below their super-ionic phase transitions. The peak zT of Cu2Se is 0.7 at 406 K and of Cu 1.97Ag0.03Se is 1.0 at 400 K. In all three materials these enhancements are due to anomalous increases in their Seebeck coefficients, beyond that predicted by carrier concentration measurements and band structure modeling. As the Seebeck coefficient is the entropy transported per carrier, this suggests that there is an additional quantity of entropy co-transported with charge carriers. Such co-transport has been previously observed via co-transport of vibrational entropy in bipolaron conductors and spin-state entropy in Na xCo2O4. The correlation of the temperature profile of the increases in each material with the nature of their phase transitions indicates that the entropy is associated with the thermodynamcis of ion-ordering. This suggests a new mechanism by which high thermoelectric performance may be understood and engineered.
机译:热电材料的质量取决于其温度相关的品质因数(zT)的大小。超离子材料,特别是Zn4Sb3和Cu 2Se,因其无序超离子相的高zT和低导热性而受到人们的关注。在这项工作中,据报道,超离子材料Ag2Se,Cu2Se和Cu1.97Ag0.03Se在其有序的正常离子导电相中显示出增强的zT。与仅在其一阶相变的上方和上方测量的无序相相比,Ag2Se的有序相的zT在其有序相中增加了30%。 Cu2Se和Cu 1.97Ag0.03Se的zT在30 K温度范围内都增加了100%以上,而温度范围恰好低于其超离子相变。 Cu2Se的峰值zT在406 K时为0.7,Cu 1.97Ag0.03Se的峰值在400 K时为1.0。在所有这三种材料中,这些增强是由于塞贝克系数的异常增加所致,超过了载流子浓度测量和能带结构建模所预测的。由于塞贝克系数是每个载流子传输的熵,因此表明存在与电荷载流子共传输的额外熵。先前已经通过双极化子导体中的振动熵和Na xCo 2 O 4中的自旋态熵的共迁移观察到了这种共迁移。每种材料中温度升高的温度分布与其相变性质的相关性表明,熵与离子有序热动力学相关。这暗示了可以理解和设计高热电性能的新机制。

著录项

  • 作者

    Brown, David R.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Materials science.;Physics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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