Nuanced dilute doping strategy enables high-performance GeTe thermoelectrics

被引:7
|
作者
Zhong, Jinxuan [1 ]
Yang, Xiaoyu [2 ]
Lyu, Tu [1 ]
Liang, Gege [1 ]
Zhang, Shengnan [3 ]
Zhang, Chaohua [1 ]
Ao, Weiqin [1 ]
Liu, Fusheng [1 ]
Nan, Pengfei [2 ]
Ge, Binghui [2 ]
Hu, Lipeng [1 ]
机构
[1] Shenzhen Univ, Coll Mat Sci & Engn, Guangdong Res Ctr Interfacial Engn Funct Mat, Inst Deep Earth Sci & Green Energy,Shenzhen Key La, Shenzhen 518060, Peoples R China
[2] Anhui Univ, Inst Phys Sci & Informat Technol, Informat Mat & Intelligent Sensing Lab Anhui Prov, Key Lab Struct & Funct Regulat Hybrid Mat,Minist E, Hefei 230601, Peoples R China
[3] Northwest Inst Nonferrous Met Res, Superconducting Mat Res Ctr, Xian 710016, Peoples R China
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
Thermoelectric; GeTe; Dilute doping; Interstitial atoms; Lattice softening; LATTICE THERMAL-CONDUCTIVITY; LEADS; TEMPERATURE; FIGURE; MERIT;
D O I
10.1016/j.scib.2024.02.015
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
In thermoelectrics, doping is essential to augment the figure of merit. Traditional strategy, predominantly heavy doping, aims to optimize carrier concentration and restrain lattice thermal conductivity. However, this tactic can severely hamper carrier transport due to pronounced point defect scattering, particularly in materials with inherently low carrier mean-free-path. Conversely, dilute doping, although minimally affecting carrier mobility, frequently fails to optimize other vital thermoelectric parameters. Herein, we present a more nuanced dilute doping strategy in GeTe, leveraging the multifaceted roles of small-size metal atoms. A mere 4% CuPbSbTe3 introduction into GeTe swiftly suppresses rhombohedral distortion and optimizes carrier concentration through the aid of Cu interstitials. Additionally, the formation of multiscale microstructures, including zero-dimensional Cu interstitials, one-dimensional dislocations, two-dimensional planar defects, and three-dimensional nanoscale amorphous GeO2 and Cu2GeTe3 precipitates, along with the ensuing lattice softening, contributes to an ultralow lattice thermal conductivity. Intriguingly, dilute CuPbSbTe3 doping incurs only a marginal decrease in carrier mobility. Subsequent trace Cd doping, employed to alleviate the bipolar effect and align the valence bands, yields an impressive figure-of-merit of 2.03 at 623 K in (Ge0.97Cd0.03Te)(0.96)(CuPbSbTe3)(0.04). This leads to a high energy-conversion efficiency of 7.9% and a significant power density of 3.44 W cm(-2) at a temperature difference of 500 K. These results underscore the invaluable insights gained into the constructive role of nuanced dilute doping in the concurrent tuning of carrier and phonon transport in GeTe and other thermoelectric materials.
引用
收藏
页码:1037 / 1049
页数:13
相关论文
共 50 条
  • [41] Grain size optimization for high-performance polycrystalline SnSe thermoelectrics
    Peng, Kunling
    Wu, Hong
    Yan, Yanci
    Guo, Lijie
    Wang, Guoyu
    Lu, Xu
    Zhou, Xiaoyuan
    JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (27) : 14053 - 14060
  • [42] Hierarchical Architectural Structures Induce High Performance in n-Type GeTe-Based Thermoelectrics
    Wang, De-Zhuang
    Liu, Wei-Di
    Li, Meng
    Zheng, Kun
    Hu, Hanwen
    Yin, Liang-Cao
    Wang, Yifeng
    Zhu, He
    Shi, Xiao-Lei
    Yang, Xiaoning
    Liu, Qingfeng
    Chen, Zhi-Gang
    ADVANCED FUNCTIONAL MATERIALS, 2023, 33 (14)
  • [43] Multifunctional Doping Strategy to Develop High-Performance Ni-Rich Cathode Material
    Park, Nam-Yung
    Cho, Gyeil
    Kim, Su-Bin
    Sun, Yang-Kook
    ADVANCED ENERGY MATERIALS, 2023, 13 (14)
  • [44] High-Performance and Ecofriendly Organic Thermoelectrics Enabled by N-Type Polythiophene Derivatives with Doping-Induced Molecular Order
    Deng, Sihui
    Kuang, Yazhuo
    Liu, Liyao
    Liu, Xinyu
    Liu, Jian
    Li, Jingyu
    Meng, Bin
    Di, Chong-an
    Hu, Junli
    Liu, Jun
    ADVANCED MATERIALS, 2024, 36 (08)
  • [45] Controlling Crystallization Dynamics of the Perovskite by Restricted Assembly Strategy Enables High-Performance Solar Cells
    Zhang, Haozhe
    Yang, Qu
    Jiang, Zhuojun
    Liu, Xuncheng
    Liu, Cheng
    Liu, Zonghao
    Gao, Xingyu
    Shen, Hui
    Su, Zhenhuang
    Gong, Xiu
    ADVANCED FUNCTIONAL MATERIALS, 2025,
  • [46] High-Performance AgSbTe2 Thermoelectrics: Advances, Challenges, and Perspectives
    Li, Lan
    Hu, Boxuan
    Liu, Qingyi
    Shi, Xiao-Lei
    Chen, Zhi-Gang
    ADVANCED MATERIALS, 2024, 36 (45)
  • [47] Defect Engineering for High-Performance n-Type PbSe Thermoelectrics
    Zhou, Chongjian
    Lee, Yong Kyu
    Cha, Joonil
    Yoo, Byeongjun
    Cho, Sung-Pyo
    Hyeon, Taeghwan
    Chung, In
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (29) : 9282 - 9290
  • [48] High-performance bulk thermoelectrics with all-scale hierarchical architectures
    Biswas, Kanishka
    He, Jiaqing
    Blum, Ivan D.
    Wu, Chun-I
    Hogan, Timothy P.
    Seidman, David N.
    Dravid, Vinayak P.
    Kanatzidis, Mercouri G.
    NATURE, 2012, 489 (7416) : 414 - 418
  • [49] High-performance bulk thermoelectrics with all-scale hierarchical architectures
    Kanishka Biswas
    Jiaqing He
    Ivan D. Blum
    Chun-I Wu
    Timothy P. Hogan
    David N. Seidman
    Vinayak P. Dravid
    Mercouri G. Kanatzidis
    Nature, 2012, 489 : 414 - 418
  • [50] The journey of tin chalcogenides towards high-performance thermoelectrics and topological materials
    Banik, Ananya
    Roychowdhury, Subhajit
    Biswas, Kanishka
    CHEMICAL COMMUNICATIONS, 2018, 54 (50) : 6573 - 6590