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The pursuit of stability in halide perovskites: the monovalent cation and the key for surface and bulk self-healing

Authors :
Vyacheslav Kalchenko
David Cahen
Yevgeny Rakita
Llorenç Cremonesi
Gary Hodes
Naga Prathibha Jasti
Marco A. C. Potenza
I. Rosenhek-Goldian
Davide Raffaele Ceratti
A. V. Cohen
Tatyana Bendikov
L. Snarski
M. Weitman
Reshef Tenne
Leeor Kronik
R. Cohen
Michael Elbaum
Ifat Kaplan-Ashiri
Source :
Materials Horizons. 8:1570-1586
Publication Year :
2021
Publisher :
Royal Society of Chemistry (RSC), 2021.

Abstract

We find significant differences between degradation and healing at the surface or in the bulk for each of the different APbBr3 single crystals (A = CH3NH3+, methylammonium (MA); HC(NH2)2+, formamidinium (FA); and cesium, Cs+). Using 1- and 2-photon microscopy and photobleaching we conclude that kinetics dominate the surface and thermodynamics the bulk stability. Fluorescence-lifetime imaging microscopy, as well as results from several other methods, relate the (damaged) state of the halide perovskite (HaP) after photobleaching to its modified optical and electronic properties. The A cation type strongly influences both the kinetics and the thermodynamics of recovery and degradation: FA heals best the bulk material with faster self-healing; Cs+ protects the surface best, being the least volatile of the A cations and possibly through O-passivation; MA passivates defects via methylamine from photo-dissociation, which binds to Pb2+. DFT simulations provide insight into the passivating role of MA, and also indicate the importance of the Br3- defect as well as predicts its stability. The occurrence and rate of self-healing are suggested to explain the low effective defect density in the HaPs and through this, their excellent performance. These results rationalize the use of mixed A-cation materials for optimizing both solar cell stability and overall performance of HaP-based devices, and provide a basis for designing new HaP variants. published

Details

ISSN :
20516355 and 20516347
Volume :
8
Database :
OpenAIRE
Journal :
Materials Horizons
Accession number :
edsair.doi.dedup.....ebae606eb6bfc270d8825f1457703249
Full Text :
https://doi.org/10.1039/d1mh00006c