TY - JOUR
T1 - Atomistic Insights into the Origin of High-Performance Thermoelectric Response in Hybrid Perovskites
AU - Shi, Wen
AU - Yao, Mingjia
AU - Wu, Xiaomei
AU - Zhou, Tingxia
AU - Yong, Xue
AU - Deng, Tianqi
AU - Ma, Huili
AU - Xi, Jinyang
N1 - Publisher Copyright:
© 2023 The Authors. Advanced Science published by Wiley-VCH GmbH.
PY - 2023/7/18
Y1 - 2023/7/18
N2 - Due to their tantalizing prospect of heat-electricity interconversion, hybrid organic–inorganic perovskites have sparked considerable research interests recently. Nevertheless, understanding their complex interplay between the macroscopic properties, nonintuitive transport processes, and basic chemical structures still remains far from completion, although it plays a fundamental role in systematic materials development. On the basis of multiscale first-principles calculations, this understanding is herein advanced by establishing a comprehensive picture consisting of atomic and charge dynamics. It is unveiled that the ultralow room-temperature lattice thermal conductivity (≈0.20 W m−1 K−1) of hybrid perovskites is critical to their decent thermoelectric figure of merit (≈0.34), and such phonon-glass behavior stems from not only the inherent softness but also the strong anharmonicity. It is identified that the 3D electrostatic interaction and hydrogen-bonded networks between the PbI3− cage and embedded cations result in the strongly coupled motions of inorganic framework and cation, giving rise to their high degree of anharmonicity. Furthermore, such coupled motions bring about low-frequency optical vibrational modes, which leads to the dominant role of electron scattering with optical phonons in charge transport. It is expected that these new atomistic-level insights offer a standing point where the performance of thermoelectric perovskites can be further enhanced.
AB - Due to their tantalizing prospect of heat-electricity interconversion, hybrid organic–inorganic perovskites have sparked considerable research interests recently. Nevertheless, understanding their complex interplay between the macroscopic properties, nonintuitive transport processes, and basic chemical structures still remains far from completion, although it plays a fundamental role in systematic materials development. On the basis of multiscale first-principles calculations, this understanding is herein advanced by establishing a comprehensive picture consisting of atomic and charge dynamics. It is unveiled that the ultralow room-temperature lattice thermal conductivity (≈0.20 W m−1 K−1) of hybrid perovskites is critical to their decent thermoelectric figure of merit (≈0.34), and such phonon-glass behavior stems from not only the inherent softness but also the strong anharmonicity. It is identified that the 3D electrostatic interaction and hydrogen-bonded networks between the PbI3− cage and embedded cations result in the strongly coupled motions of inorganic framework and cation, giving rise to their high degree of anharmonicity. Furthermore, such coupled motions bring about low-frequency optical vibrational modes, which leads to the dominant role of electron scattering with optical phonons in charge transport. It is expected that these new atomistic-level insights offer a standing point where the performance of thermoelectric perovskites can be further enhanced.
KW - ab initio calculations
KW - hybrid organic–inorganic perovskites
KW - molecular dynamics simulations
KW - thermoelectrics
UR - http://www.scopus.com/inward/record.url?scp=85159140987&partnerID=8YFLogxK
U2 - 10.1002/advs.202300666
DO - 10.1002/advs.202300666
M3 - 文章
AN - SCOPUS:85159140987
SN - 2198-3844
VL - 10
JO - Advanced Science
JF - Advanced Science
IS - 20
M1 - 2300666
ER -