Local halide heterogeneity drives surface wrinkling in mixed-halide wide-bandgap perovskites

K Kunal Datta (School of Materials Science and Engineering) S Simone C. W. van Laar M Margherita Taddei (National Renewable Energy Laboratory) J Juanita Hidalgo T Tim Kodalle (Molecular Foundry, Lawrence Berkeley National Laboratory, 1 Cyclotron Rd., Berkeley, California 94720, United States) G Guus J. W. Aalbers B Barry Lai R Ruipeng Li (National Synchrotron Light Source II) N Nobumichi Tamura J Jordi T. W. Frencken S Simon V. Quiroz Monnens R Robert J. E. Westbrook (Department of Chemistry) D Daniel J. Graham (Department of Civil and Environmental Engineering, Imperial College London, South Kensington) C Carolin M. Sutter-Fella (Molecular Foundry, Lawrence Berkeley National Laboratory, 1 Cyclotron Rd., Berkeley, California 94720, United States) J Juan-Pablo Correa-Baena (School of Materials Science and Engineering) D David S. Ginger (Department of Chemistry) M Martijn M. Wienk R René A. J. Janssen

Abstract

Abstract Compositional heterogeneity in wide-bandgap (1.8 − 2.1 eV) mixed-halide perovskites is a key bottleneck in the processing of high-quality solution-processed thin films and prevents their application in efficient multijunction solar cells. Notably, mixed-cation (formamidinium-methylammonium) wide-bandgap perovskite films are prone to form micrometer-scale wrinkles which can interfere with the smooth surfaces ideal for multijunction devices. Here, we study the formation dynamics of wrinkled mixed-halide perovskite films and its impact on the local composition and optoelectronic properties. We use in situ X-ray scattering during perovskite film formation to show that crystallization of bromide-rich perovskites precedes that of mixed-halide phases in wrinkled films cast using an antisolvent-based process. Using nanoscopic X­-ray fluorescence and hyperspectral photoluminescence imaging, we also demonstrate the formation of iodide- and bromide-rich phases in the wrinkled domains. This intrinsic spatial halide segregation results in an increased local bandgap variation and Urbach energy. Morphological disorder and compositional heterogeneity also aggravate the formation of sub-bandgap electronic defects, reducing photostability and accelerating light-induced segregation of iodide and bromide ions in thin films and solar cells.

Article Details

Volume / Issue Vol. 16, Issue 1
Published February 25, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (18)

K

Kunal Datta

School of Materials Science and Engineering

S

Simone C. W. van Laar

M

Margherita Taddei

National Renewable Energy Laboratory

J

Juanita Hidalgo

T

Tim Kodalle

Molecular Foundry, Lawrence Berkeley National Laboratory, 1 Cyclotron Rd., Berkeley, California 94720, United States

G

Guus J. W. Aalbers

B

Barry Lai

R

Ruipeng Li

National Synchrotron Light Source II

N

Nobumichi Tamura

J

Jordi T. W. Frencken

S

Simon V. Quiroz Monnens

R

Robert J. E. Westbrook

Department of Chemistry

D

Daniel J. Graham

Department of Civil and Environmental Engineering, Imperial College London, South Kensington

C

Carolin M. Sutter-Fella

Molecular Foundry, Lawrence Berkeley National Laboratory, 1 Cyclotron Rd., Berkeley, California 94720, United States

J

Juan-Pablo Correa-Baena

School of Materials Science and Engineering

D

David S. Ginger

Department of Chemistry

M

Martijn M. Wienk

R

René A. J. Janssen