| Literature DB >> 28409968 |
Omer Yaffe1, Yinsheng Guo1, Liang Z Tan2, David A Egger3, Trevor Hull1, Constantinos C Stoumpos4, Fan Zheng2, Tony F Heinz5,6, Leeor Kronik3, Mercouri G Kanatzidis4,7, Jonathan S Owen1, Andrew M Rappe2, Marcos A Pimenta1,8, Louis E Brus1.
Abstract
Hybrid lead-halide perovskites have emerged as an excellent class of photovoltaic materials. Recent reports suggest that the organic molecular cation is responsible for local polar fluctuations that inhibit carrier recombination. We combine low-frequency Raman scattering with first-principles molecular dynamics (MD) to study the fundamental nature of these local polar fluctuations. Our observations of a strong central peak in the cubic phase of both hybrid (CH_{3}NH_{3}PbBr_{3}) and all-inorganic (CsPbBr_{3}) lead-halide perovskites show that anharmonic, local polar fluctuations are intrinsic to the general lead-halide perovskite structure, and not unique to the dipolar organic cation. MD simulations indicate that head-to-head Cs motion coupled to Br face expansion, occurring on a few hundred femtosecond time scale, drives the local polar fluctuations in CsPbBr_{3}.Entities:
Year: 2017 PMID: 28409968 DOI: 10.1103/PhysRevLett.118.136001
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161