| Literature DB >> 31322309 |
Guozhan Xia1,2,3, Boyuan Huang1,2, Ying Zhang2,4, Xingyu Zhao4, Chen Wang4, Chunmei Jia2,4, Jinjin Zhao4,5, Weiqiu Chen3,6,7, Jiangyu Li1,2.
Abstract
Triple-cation mixed-halide perovskites of composition Csx (FAy MA1- y )1 -x Pb(Iz Br1 -z )3 (CsFAMA) have been reported to possess excellent photovoltaic efficiency with minimal hysteresis; in this work, nanoscale insight is shed into the roles of illumination-induced polarization and ionic migration in photovoltaic hysteresis. By examining the concurrent evolution of ionic distribution and spontaneous polarization of CsFAMA under light illumination using dynamic-strain-based scanning probe microscopy, strong linear piezoelectricity arising from photoenhanced polarization is observed, while ionic migration is found to be not significantly increased by lightening. Nanoscale photocurrents are mapped under a series of biases using conductive atomic force microscopy, revealing negligible difference between forward and backward scans, and local IV curves reconstructed from principal component analysis show minimal hysteresis of just 1%. These observations at the nanoscale are confirmed in a macroscopic perovskite solar cell made of CsFAMA, exhibiting a high efficiency of 20.11% and with hysteresis index as small as 3%. Ionic migration, polarization, and photocurrent hysteresis are thus directly correlated at the nanoscale, and photoenhanced polarization in triple-cation mixed-halide perovskites is established, which does not contribute to the photovoltaic hysteresis.Entities:
Keywords: dynamic-strain-based scanning probe microscopy; hysteresis; ionic migration; spontaneous polarization; triple-cation mixed-halide perovskites
Year: 2019 PMID: 31322309 DOI: 10.1002/adma.201902870
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849