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Enhanced Thermoelectric Properties in Bulk Nanowire Heterostructure-Based Nanocomposites through Minority Carrier Blocking

机译:通过少数载流子阻塞增强了基于体纳米线异质结构的纳米复合材料的热电性能。

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摘要

To design superior thermoelectric materials the minority carrier blocking effect in which the unwanted bipolar transport is prevented by the interfacial energy barriers in the heterogeneous nanostructures has been theoretically proposed recently. The theory predicts an enhanced power factor and a reduced bipolar thermal conductivity for materials with a relatively low doping level, which could lead to an improvement in the thermoelectric figure of merit (ZT). Here we show the first experimental demonstration of the minority carrier blocking in lead telluride–silver telluride (PbTe–Ag_2Te) nanowire heterostructure-based nanocomposites. The nanocomposites are made by sintering PbTe–Ag_2Te nanowire heterostructures produced in a highly scalable solution-phase synthesis. Compared with Ag_2Te nanowire-based nanocomposite produced in similar method, the PbTe–Ag_2Te nanocomposite containing ∼5 atomic % PbTe exhibits enhanced Seebeck coefficient, reduced thermal conductivity, and ∼40% improved ZT, which can be well explained by the theoretical modeling based on the Boltzmann transport equations when energy barriers for both electrons and holes at the heterostructure interfaces are considered in the calculations. For this p-type PbTe–Ag_2Te nanocomposite, the barriers for electrons, that is, minority carriers, are primarily responsible for the ZT enhancement. By extending this approach to other nanostructured systems, it represents a key step toward low-cost solution-processable nanomaterials without heavy doping level for high-performance thermoelectric energy harvesting.
机译:为了设计优良的热电材料,近来理论上提出了少数载流子阻挡效应,其中通过异质纳米结构中的界面能垒防止了不希望的双极传输。该理论预测,掺杂水平相对较低的材料将提高功率因数,降低双极性导热率,这可能会导致热电性能因数(ZT)的提高。在这里,我们展示了碲化铅-碲化银(PbTe-Ag_2Te)纳米线异质结构纳米复合材料中少数载流子阻断的实验演示。纳米复合材料是通过烧结以高度可扩展的溶液相合成法生产的PbTe-Ag_2Te纳米线异质结构制成的。与以类似方法生产的基于Ag_2Te纳米线的纳米复合材料相比,含约5%原子百分比的PbTe的PbTe–Ag_2Te纳米复合材料表现出更高的塞贝克系数,降低的热导率和约40%的ZT改善,这可以通过基于计算中考虑了异质结构界面处的电子和空穴的能垒时的玻耳兹曼输运方程。对于这种p型PbTe–Ag_2Te纳米复合材料,电子(即少数载流子)的势垒主要是ZT增强的原因。通过将此方法扩展到其他纳米结构系统,它代表了向低成本溶液可加工的纳米材料迈出的关键一步,而无需为高性能热电能量收集提供高掺杂水平。

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