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拓扑绝缘体铋/锑碲化物中的原子层状热电转换。

Atomic layer-by-layer thermoelectric conversion in topological insulator bismuth/antimony tellurides.

机构信息

Center for Artificial Low Dimensional Electronic Systems, Institute for Basic Science (IBS), Pohang University of Science and Technology (POSTECH) , 77 Cheongam-Ro, Pohang 790-784, Korea.

出版信息

Nano Lett. 2014 Jul 9;14(7):4030-5. doi: 10.1021/nl501468k. Epub 2014 Jun 18.

Abstract

Material design for direct heat-to-electricity conversion with substantial efficiency essentially requires cooperative control of electrical and thermal transport. Bismuth telluride (Bi2Te3) and antimony telluride (Sb2Te3), displaying the highest thermoelectric power at room temperature, are also known as topological insulators (TIs) whose electronic structures are modified by electronic confinements and strong spin-orbit interaction in a-few-monolayers thickness regime, thus possibly providing another degree of freedom for electron and phonon transport at surfaces. Here, we explore novel thermoelectric conversion in the atomic monolayer steps of a-few-layer topological insulating Bi2Te3 (n-type) and Sb2Te3 (p-type). Specifically, by scanning photoinduced thermoelectric current imaging at the monolayer steps, we show that efficient thermoelectric conversion is accomplished by optothermal motion of hot electrons (Bi2Te3) and holes (Sb2Te3) through 2D subbands and topologically protected surface states in a geometrically deterministic manner. Our discovery suggests that the thermoelectric conversion can be interiorly achieved at the atomic steps of a homogeneous medium by direct exploiting of quantum nature of TIs, thus providing a new design rule for the compact thermoelectric circuitry at the ultimate size limit.

摘要

具有高效率的直接热能-电能转换的材料设计,本质上需要对电输运和热输运进行协同控制。碲化铋(Bi2Te3)和碲化锑(Sb2Te3)在室温下表现出最高的热电功率,它们也被称为拓扑绝缘体(TIs),其电子结构在几单层厚度范围内通过电子限制和强自旋轨道相互作用进行修饰,从而为表面处的电子和声子输运提供了另一个自由度。在这里,我们探索了几层层状拓扑绝缘 Bi2Te3(n 型)和 Sb2Te3(p 型)原子层台阶中的新型热电转换。具体而言,通过在原子层台阶处扫描光致热电电流成像,我们表明,通过热电子(Bi2Te3)和空穴(Sb2Te3)通过 2D 子带和几何确定性的拓扑保护表面态的光热运动,可以高效地完成热电转换。我们的发现表明,通过直接利用 TIs 的量子性质,可以在均匀介质的原子台阶内部实现热电转换,从而为最终尺寸极限下的紧凑热电电路提供了新的设计规则。

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