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Self-Healing Inside APbBr3 Halide Perovskite Crystals

Authors :
Yevgeny Rakita
Michael Elbaum
Davide Raffaele Ceratti
Llorenç Cremonesi
Dan Oron
Marco A. C. Potenza
Vyacheslav Kalchenko
Ron Tenne
David Cahen
Gary Hodes
Ceratti, D
Rakita, Y
Cremonesi, L
Tenne, R
Kalchenko, V
Elbaum, M
Oron, D
Potenza, M
Hodes, G
Cahen, D
Source :
Advanced Materials. 30:1706273
Publication Year :
2018
Publisher :
Wiley, 2018.

Abstract

Self-healing, where a modification in some parameter is reversed with time without any external intervention, is one of the particularly interesting properties of halide perovskites. While there are a number of studies showing such self-healing in perovskites, they all are carried out on thin films, where the interface between the perovskite and another phase (including the ambient) is often a dominating and interfering factor in the process. Here, self-healing in perovskite (methylammonium, formamidinium, and cesium lead bromide (MAPbBr3 , FAPbBr3 , and CsPbBr3 )) single crystals is reported, using two-photon microscopy to create damage (photobleaching) ≈110 µm inside the crystals and to monitor the recovery of photoluminescence after the damage. Self-healing occurs in all three perovskites with FAPbBr3 the fastest (≈1 h) and CsPbBr3 the slowest (tens of hours) to recover. This behavior, different from surface-dominated stability trends, is typical of the bulk and is strongly dependent on the localization of degradation products not far from the site of the damage. The mechanism of self-healing is discussed with the possible participation of polybromide species. It provides a closed chemical cycle and does not necessarily involve defect or ion migration phenomena that are often proposed to explain reversible phenomena in halide perovskites.

Details

ISSN :
09359648
Volume :
30
Database :
OpenAIRE
Journal :
Advanced Materials
Accession number :
edsair.doi.dedup.....78ff1da0e3c4b10e66d68016e07ad2a3
Full Text :
https://doi.org/10.1002/adma.201706273