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Anomalous Thermopower and High

机译:异常散热器和高

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摘要

NaxCoO2 was known 20 years ago as a unique example in which spin entropy dominates the thermoelectric behavior. Hitherto, however, little has been learned about how to manipulate the spin degree of freedom in thermoelectrics. Here, we report the enhanced thermoelectric performance of GeMnTe2 by controlling the spin's thermodynamic entropy. The anomalously large thermopower of GeMnTe2 is demonstrated to originate from the disordering of spin orientation under finite temperature. Based on the careful analysis of Heisenberg model, it is indicated that the spin-system entropy can be tuned by modifying the hybridization between Te-p and Mn-d orbitals. As a consequent strategy, Se doping enlarges the thermopower effectively, while neither carrier concentration nor band gap is affected. The measurement of magnetic susceptibility provides a solid evidence for the inherent relationship between the spin's thermodynamic entropy and thermopower. By further introducing Bi doing, the maximum ZT in Ge0.94Bi0.06MnTe1.94Se0.06 reaches 1.4 at 840 K, which is 45% higher than the previous report of Bi-doped GeMnTe2. This work reveals the high thermoelectric performance of GeMnTe2 and also provides an insightful understanding of the spin degree of freedom in thermoelectrics.
机译:纳克西奥2已知20年前作为一个独特的例子,其中旋转熵主导热电行为。然而,迄今为止,很少了解如何操纵热电学的自由度。在这里,我们通过控制旋转的热力学熵报告GEMPENTE2的增强的热电性能。对GEMPHTE2的异常大型热电机进行了证明在有限温度下源于自旋取向的障碍。基于Heisenberg模型的仔细分析,表示可以通过改变Te-P和Mn-D轨道之间的杂交来调整自旋系统熵。作为随之而来的策略,SE掺杂有效地扩大了热电机,而载流子浓度也不受到带隙。磁化率的测量为旋转热力学熵和热电机之间的固有关系提供了坚实的证据。通过进一步介绍BI行,GE0.94Bi0.06mnte1.94se0.06中的最大ZT在840 k下达到1.4,比上一个Bi-Doped Gemnte2的报告高45%。这项工作揭示了GEMPETE2的高温性能,并对热电的自由度进行了深入了解。

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