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Exploration of Zn Resonance Levels and Thermoelectric Properties in l-Doped PbTe with ZnTe Nanostructures

机译:具有ZnTe纳米结构的l掺杂PbTe中Zn共振能级和热电性能的探索

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Motivated by the theoretically predicted Zn resonant states in the conduction band of PbTe, in the present work, we investigated the effect of Zn substitution on the thermoelectric properties in I-doped n-type PbTe. The room temperature thermopower values show good agreement with the theoretical Pisarenko plot of PbTe up to a carrier concentration of 4.17 X 10~(19) cm~(-3); thus, the presence of Zn resonance levels is not observed. Because of the low solubility of Zn in PbTe, a second phase of coherent ZnTe nanostructures is observed within the PbTe host matrix, which is found to reduce the lattice thermal conductivity. The reduced lattice thermal conductivity in PbTe by ZnTe nanostructures leads to notable enhancement in the figure of merit with a maximum value of 1.35 at 650 K. In contrast to the recent literature, the carrier mobility is not found to be affected by the band offset between ZnTe nanostructures and PbTe. This is explained by the quantum tunneling of the charge carrier through the narrow offset barrier and depletion width and coherent nature of the interface boundary between the two phases, i.e., ZnTe and PbTe.
机译:基于理论上预测的PbTe导带中的Zn共振态,在本工作中,我们研究了Zn取代对I掺杂n型PbTe中热电性能的影响。在载流子浓度为4.17 X 10〜(19)cm〜(-3)时,室温热功率值与PbTe的Pisarenko理论图具有很好的一致性。因此,没有观察到Zn共振水平的存在。由于Zn在PbTe中的溶解度低,因此在PbTe主体基质中观察到了相干ZnTe纳米结构的第二相,这降低了晶格的热导率。 ZnTe纳米结构降低了PbTe中的晶格热导率,从而导致品质因数显着提高,在650 K时的最大值为1.35。与最新文献相反,载流子迁移率未受其之间的能带偏移影响ZnTe纳米结构和PbTe。电荷载流子通过窄的偏置势垒和耗尽宽度以及ZnTe和PbTe两相之间的界面边界的相干特性的量子隧穿可以解释这一点。

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