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Axial-Equatorial Halide Ordering in Layered Hybrid Perovskites from Isotropic-Anisotropic 207Pb NMR

delete2024-02-19
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OA
AI
M
Michael A. Hope
M
Manuel Cordova
A
Aditya Mishra
U
Ummugulsum Gunes
A
Alessandro Caiazzo
K
Kunal Datta
R
René A. J. Janssen
L
Lyndon Emsley *
DOI:10.1002/anie.202314856delete
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Abstract

Abstract

En 中文
Bandgap-tuneable mixed-halide 3D perovskites are of interest for multi-junction solar cells, but suffer from photoinduced spatial halide segregation. Mixed-halide 2D perovskites are more resistant to halide segregation and are promising coatings for 3D perovskite solar cells. The properties of mixed-halide compositions depend on the local halide distribution, which is challenging to study at the level of single octahedra. In particular, it has been suggested that there is a preference for occupation of the distinct axial and equatorial halide sites in mixed-halide 2D perovskites. Pb-207 NMR can be used to probe the atomic-scale structure of lead-halide materials, but although the isotropic Pb-207 shift is sensitive to halide stoichiometry, it cannot distinguish configurational isomers. Here, we use 2D isotropic-anisotropic correlation 207Pb NMR and relativistic DFT calculations to distinguish the [PbX6] configurations in mixed iodide-bromide 3D FAPb(Br1-xIx)(3) perovskites and 2D BA(2)Pb(Br1-xIx)(4) perovskites based on formamidinium (FA(+)) and butylammonium (BA(+)), respectively. We find that iodide preferentially occupies the axial site in BA-based 2D perovskites, which may explain the suppressed halide mobility.
Keywords:
Ab initio calculations
2D halide perovskites
Halide segregation
NMR spectroscopy
photovoltaic materials
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Journal

Angewandte Chemie-International Edition cover
Angewandte Chemie-International Edition
IF:
16.9
Papers:
5.6W
Citations:
53.0W

Organization

E
Ecole Polytechnique Federale de Lausanne
Scholars:
1.7W
Papers: 1.3W
Citations: 25
S
swiss federal institutes of technology domain
Scholars:
9.0W
Papers: 8.0W
Citations: 163