TY - JOUR
T1 - Remarkable Roles of Cu to Synergistically Optimize Phonon and Carrier Transport in n-Type PbTe-Cu2Te
AU - Xiao, Yu
AU - Wu, Haijun
AU - Li, Wei
AU - Yin, Meijie
AU - Pei, Yanling
AU - Zhang, Yang
AU - Fu, Liangwei
AU - Chen, Yuexing
AU - Pennycook, Stephen J.
AU - Huang, Li
AU - He, Jiaqing
AU - Zhao, Li Dong
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/12/27
Y1 - 2017/12/27
N2 - High thermoelectric performance of n-type PbTe is urgently needed to match its p-type counterpart. Here, we show a peak ZT ∼ 1.5 at 723 K and a record high average ZT > 1.0 at 300-873 K realized in n-type PbTe by synergistically suppressing lattice thermal conductivity and enhancing carrier mobility by introducing Cu2Te inclusions. Cu performs several outstanding roles: Cu atoms fill the Pb vacancies and improve carrier mobility, contributing to an unexpectedly high power factor of ∼37 μW cm-1 K-2 at 423 K; Cu atoms filling Pb vacancies and Cu interstitials both induce local disorder and, together with nano- and microscale Cu-rich precipitates and their related strain fields, lead to a very low lattice thermal conductivity of ∼0.38 Wm-1 K-1 in PbTe-5.5%Cu2Te, approaching the theoretical minimum value of ∼0.36 Wm-1 K-1. This work provides an effective strategy to enhance thermoelectric performance by simultaneously improving electrical and thermal transport properties.
AB - High thermoelectric performance of n-type PbTe is urgently needed to match its p-type counterpart. Here, we show a peak ZT ∼ 1.5 at 723 K and a record high average ZT > 1.0 at 300-873 K realized in n-type PbTe by synergistically suppressing lattice thermal conductivity and enhancing carrier mobility by introducing Cu2Te inclusions. Cu performs several outstanding roles: Cu atoms fill the Pb vacancies and improve carrier mobility, contributing to an unexpectedly high power factor of ∼37 μW cm-1 K-2 at 423 K; Cu atoms filling Pb vacancies and Cu interstitials both induce local disorder and, together with nano- and microscale Cu-rich precipitates and their related strain fields, lead to a very low lattice thermal conductivity of ∼0.38 Wm-1 K-1 in PbTe-5.5%Cu2Te, approaching the theoretical minimum value of ∼0.36 Wm-1 K-1. This work provides an effective strategy to enhance thermoelectric performance by simultaneously improving electrical and thermal transport properties.
UR - https://www.scopus.com/pages/publications/85039998157
U2 - 10.1021/jacs.7b11662
DO - 10.1021/jacs.7b11662
M3 - 文章
C2 - 29182275
AN - SCOPUS:85039998157
SN - 0002-7863
VL - 139
SP - 18732
EP - 18738
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 51
ER -