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梯度掺杂可实现热电材料PbTeI的卓越效率。

Gradient Doping Enables an Extraordinary Efficiency in Thermoelectric PbTeI.

作者信息

Zhou Jiayu, Chen Zhiwei, Luo Jun, Li Wen, Pei Yanzhong

机构信息

Interdisciplinary Materials Research Center, School of Materials Science and Engineering, Tongji University, 4800 Caoan Rd., Shanghai, 201804, China.

出版信息

Adv Mater. 2024 Aug;36(31):e2405299. doi: 10.1002/adma.202405299. Epub 2024 May 30.

Abstract

The conversion efficiency of thermoelectric generators that have to be operated under a temperature difference (ΔT) is mainly determined by material's dimensionless figure of merit (zT). However, maximization of zT at each temperature requires an optimization of carrier concentration (n) which strongly depends on the temperature and band parameters. Commonly utilized strategy of chemical doping usually enables a homogeneous carrier concentration throughout the material, leading the maximal zT to be achievable only within a narrow temperature range. In this work, a gradiently doping is successfully realized in PbTeI using a vertical gradient solidification technique, enabling a spatial gradient in carrier concentration that correspondingly optimizes zT at each portion of the material under its operating temperature. Such a gradient doping results in an extraordinary device efficiency of ≈14% at a ΔT of ≈500 K, corresponding to a ≈40% improvement as compared to that of homogeneous doping. Since directional solidification technique commonly enables gradient dopant concentrations in semiconductors, the resultant gradient carrier concentration is illustrated here as an effective approach for advancing thermoelectrics.

摘要

必须在温差(ΔT)下运行的热电发电机的转换效率主要由材料的无量纲品质因数(zT)决定。然而,在每个温度下使zT最大化需要优化载流子浓度(n),而载流子浓度强烈依赖于温度和能带参数。常用的化学掺杂策略通常能使整个材料中的载流子浓度均匀,导致仅在狭窄的温度范围内才能实现最大zT。在这项工作中,利用垂直梯度凝固技术在PbTeI中成功实现了梯度掺杂,使得载流子浓度产生空间梯度,从而在材料的每个工作温度部分相应地优化zT。这种梯度掺杂在ΔT约为500 K时可实现约14%的非凡器件效率,与均匀掺杂相比提高了约40%。由于定向凝固技术通常能在半导体中实现梯度掺杂剂浓度,这里展示的所得梯度载流子浓度是推进热电学的一种有效方法。

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