Literature DB >> 29956926

Defect Engineering for High-Performance n-Type PbSe Thermoelectrics.

Chongjian Zhou1, Yong Kyu Lee1, Joonil Cha1, Byeongjun Yoo1, Sung-Pyo Cho, Taeghwan Hyeon1, In Chung1.   

Abstract

Introducing structural defects such as vacancies, nanoprecipitates, and dislocations is a proven means of reducing lattice thermal conductivity. However, these defects tend to be detrimental to carrier mobility. Consequently, the overall effects for enhancing ZT are often compromised. Indeed, developing strategies allowing for strong phonon scattering and high carrier mobility at the same time is a prime task in thermoelectrics. Here we present a high-performance thermoelectric system of Pb0.95(Sb0.033□0.017)Se1- yTe y (□ = vacancy; y = 0-0.4) embedded with unique defect architecture. Given the mean free paths of phonons and electrons, we rationally integrate multiple defects that involve point defects, vacancy-driven dense dislocations, and Te-induced nanoprecipitates with different sizes and mass fluctuations. They collectively scatter thermal phonons in a wide range of frequencies to give lattice thermal conductivity of ∼0.4 W m-1 K-1, which approaches to the amorphous limit. Remarkably, Te alloying increases a density of nanoprecipitates that affect mobility negligibly and impede phonons significantly, and it also decreases a density of dislocations that scatter both electrons and phonons heavily. As y is increased to 0.4, electron mobility is enhanced and lattice thermal conductivity is decreased simultaneously. As a result, Pb0.95(Sb0.033□0.017)Se0.6Te0.4 exhibits the highest ZT ∼ 1.5 at 823 K, which is attributed to the markedly enhanced power factor and reduced lattice thermal conductivity, in comparison with a ZT ∼ 0.9 for Pb0.95(Sb0.033□0.017)Se that contains heavy dislocations only. These results highlight the potential of defect engineering to modulate electrical and thermal transport properties independently. We also reveal the defect formation mechanisms for dislocations and nanoprecipitates embedded in Pb0.95(Sb0.033□0.017)Se0.6Te0.4 by atomic resolution spherical aberration-corrected scanning transmission electron microscopy.

Entities:  

Year:  2018        PMID: 29956926     DOI: 10.1021/jacs.8b05741

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  5 in total

1.  Thermoelectric Enhancements in PbTe Alloys Due to Dislocation-Induced Strains and Converged Bands.

Authors:  Yixuan Wu; Pengfei Nan; Zhiwei Chen; Zezhu Zeng; Ruiheng Liu; Hongliang Dong; Li Xie; Youwei Xiao; Zhiqiang Chen; Hongkai Gu; Wen Li; Yue Chen; Binghui Ge; Yanzhong Pei
Journal:  Adv Sci (Weinh)       Date:  2020-05-15       Impact factor: 16.806

2.  Manipulation of Band Degeneracy and Lattice Strain for Extraordinary PbTe Thermoelectrics.

Authors:  Yixuan Wu; Pengfei Nan; Zhiwei Chen; Zezhu Zeng; Siqi Lin; Xinyue Zhang; Hongliang Dong; Zhiqiang Chen; Hongkai Gu; Wen Li; Yue Chen; Binghui Ge; Yanzhong Pei
Journal:  Research (Wash D C)       Date:  2020-01-24

3.  Solution and Solid-State Characterization of PbSe Precursors.

Authors:  Prathamesh B Vartak; Zhongyong Wang; Thomas L Groy; Ryan J Trovitch; Robert Y Wang
Journal:  ACS Omega       Date:  2020-01-21

4.  Hydrostatic Pressure Tuning of Thermal Conductivity for PbTe and PbSe Considering Pressure-Induced Phase Transitions.

Authors:  Min Zhang; Guihua Tang; Yifei Li
Journal:  ACS Omega       Date:  2021-01-26

Review 5.  An Overview of the Strategies for Tin Selenide Advancement in Thermoelectric Application.

Authors:  Rosnita Md Aspan; Noshin Fatima; Ramizi Mohamed; Ubaidah Syafiq; Mohd Adib Ibrahim
Journal:  Micromachines (Basel)       Date:  2021-11-27       Impact factor: 2.891

  5 in total

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