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在扁平带隙KMgBi晶体中协同实现大的普通能斯特效应和轴依赖传导极性

Synergizing a Large Ordinary Nernst Effect and Axis-Dependent Conduction Polarity in Flat Band KMgBi Crystals.

作者信息

Ochs Andrew M, Fecher Gerhard H, He Bin, Schnelle Walter, Felser Claudia, Heremans Joseph P, Goldberger Joshua E

机构信息

Department of Chemistry and Biochemistry, The Ohio State University, Columbus, OH, 43210, USA.

Max-Planck Institute for the Chemical Physics of Solids, 01187, Dresden, Germany.

出版信息

Adv Mater. 2024 Jan;36(2):e2308151. doi: 10.1002/adma.202308151. Epub 2023 Nov 29.

Abstract

The exploration of quantum materials in which an applied thermo/electrical/magnetic field along one crystallographic direction produces an anisotropic response has led to unique functionalities. Along these lines, KMgBi is a layered, narrow gap semiconductor near a critical state between multiple Dirac phases due to the presence of a flat band near the Fermi level. The valence band is highly anisotropic with minimal cross-plane dispersion, which, in combination with an isotropic conduction band, enables axis-dependent conduction polarity. Thermopower and Hall measurements indicate dominant p-type conduction along the cross-plane direction, and n-type conduction along the in-plane direction, leading to a significant zero-field transverse thermoelectric response when the heat flux is at an angle to the principal crystallographic directions. Additionally, a large Ordinary Nernst effect (ONE) is observed with an applied field.  It arises from the ambipolar term in the Nernst effect, whereby the Lorentz force on electrons and holes makes them drift in opposite directions so that the resulting Nernst voltage becomes a function of the difference between their partial thermopowers, greatly enhancing the ONE. It is proven that axis-dependent polarity can synergistically enhance the ONE, in addition to leading to a zero-field transverse thermoelectric performance.

摘要

对量子材料的探索发现,沿一个晶体学方向施加热/电/磁场会产生各向异性响应,从而带来独特的功能。沿着这些思路,由于费米能级附近存在平带,KMgBi是一种处于多个狄拉克相之间临界状态附近的层状窄带隙半导体。价带具有高度各向异性,面内色散极小,与各向同性的导带相结合,使得传导极性依赖于轴。热电势和霍尔测量表明,沿面内方向主要为p型传导,沿面外方向为n型传导,当热流与主要晶体学方向成一定角度时,会导致显著的零场横向热电响应。此外,施加磁场时会观察到较大的普通能斯特效应(ONE)。它源于能斯特效应中的双极项,即电子和空穴上的洛伦兹力使它们向相反方向漂移,从而使产生的能斯特电压成为它们部分热电势之差的函数,极大地增强了ONE。事实证明,依赖于轴的极性除了会导致零场横向热电性能外,还能协同增强ONE。

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