Ju Hyun, Kim Myeongjin, Yang Jinglei, Kim Jooheon
School of Chemical Engineering & Materials Science, Chung-Ang University, Seoul 06974, Korea.
Department of Hydrogen & Renewable Energy, Kyungpook National University, 80 Daehakro, Bukgu, Daegu 41566, Korea.
Materials (Basel). 2020 Jun 1;13(11):2523. doi: 10.3390/ma13112523.
Chalcogenide-based materials have attracted widespread interest in high-performance thermoelectric research fields. A strategy for the application of two types of chalcogenide for improved thermoelectric performance is described herein. Tin selenide (SnSe) is used as a base material, and Te nanoneedles are crystallized in the SnSe, resulting in the generation of a composite structure of SnSe with Te nanoneedles. The thermoelectric properties with various reaction times are investigated to reveal the optimum conditions for enhanced thermoelectric performance. A reaction time of 4 h at 450 K generated a composite Te nanoneedles/SnSe sample with the maximum value, 3.2 times larger than that of the pristine SnSe. This result is attributed to both the reduced thermal conductivity from the effective phonon scattering of heterointerfaces and the improved electrical conductivity value due to the introduction of Te nanoparticles. This strategy suggests an approach to generating high-performance practical thermoelectric materials.
基于硫族化物的材料在高性能热电研究领域引起了广泛关注。本文描述了一种应用两种硫族化物来提高热电性能的策略。硒化锡(SnSe)用作基础材料,碲纳米针在SnSe中结晶,从而产生SnSe与碲纳米针的复合结构。研究了不同反应时间下的热电性能,以揭示增强热电性能的最佳条件。在450 K下反应4小时生成了具有最大值的复合碲纳米针/SnSe样品,该值比原始SnSe大3.2倍。这一结果归因于异质界面有效声子散射导致的热导率降低以及碲纳米颗粒的引入导致的电导率值提高。该策略为制备高性能实用热电材料提供了一种方法。