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Electron mean-free-path filtering in Dirac material for improved thermoelectric performance

机译:Dirac材料中的电子无均路径滤波可改善热电性能

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摘要

Recent advancements in thermoelectric materials have largely benefited from various approaches, including band engineering and defect optimization, among which the nanostructuring technique presents a promising way to improve the thermoelectric figure of merit (zT) by means of reducing the characteristic length of the nanostructure, which relies on the belief that phonons’ mean free paths (MFPs) are typically much longer than electrons’. Pushing the nanostructure sizes down to the length scale dictated by electron MFPs, however, has hitherto been overlooked as it inevitably sacrifices electrical conduction. Here we report through ab initio simulations that Dirac material can overcome this limitation. The monotonically decreasing trend of the electron MFP allows filtering of long-MFP electrons that are detrimental to the Seebeck coefficient, leading to a dramatically enhanced power factor. Using SnTe as a material platform, we uncover this MFP filtering effect as arising from its unique nonparabolic Dirac band dispersion. Room-temperature zT can be enhanced by nearly a factor of 3 if one designs nanostructures with grain sizes of ∼10 nm. Our work broadens the scope of the nanostructuring approach for improving the thermoelectric performance, especially for materials with topologically nontrivial electronic dynamics.
机译:热电材料的最新进展很大程度上得益于各种方法,包括能带工程和缺陷优化,其中纳米结构技术为通过减小纳米结构的特征长度来提高热电品质因数(zT)提供了一种有前途的方法,依赖于这样的信念,即声子的平均自由程(MFP)通常比电子的更长。然而,由于不可避免地牺牲了导电性,因此将纳米结构尺寸减小到由电子MFP所决定的长度尺度至今已被忽略。在这里,我们通过从头开始的模拟报告,狄拉克材料可以克服这一限制。电子MFP的单调下降趋势允许对有害于塞贝克系数的长MFP电子进行滤波,从而导致功率因数大大提高。使用SnTe作为材料平台,我们发现这种MFP过滤效果是由于其独特的非抛物线Dirac色散引起的。如果一种设计的纳米结构的晶粒尺寸约为10 nm,则室温zT可以提高近3倍。我们的工作拓宽了用于改善热电性能的纳米结构方法的范围,尤其是对于具有拓扑学意义非凡的电子动力学的材料。

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