Energy Level Gradients from Surface to Bulk in Hybrid Metal-Halide Perovskite Thin Films

Author:

Bourelle Sean A.1,Zhang Xie23ORCID,Feldmann Sascha1ORCID,Zhang Baiyu2,Mathieson Angus1,Eyre Lissa1,Abolins Haralds1,Winkler Thomas14,Van de Walle Chris G.2ORCID,Deschler Felix5ORCID

Affiliation:

1. University of Cambridge

2. University of California, Santa Barbara

3. Northwestern Polytechnical University

4. Aarhus University

5. University of Heidelberg

Abstract

Variations in local strain, defect densities, and composition of hybrid metal-halide perovskites have been reported to create heterogeneous energy landscapes in thin films, which impact charge-carrier diffusion and recombination dynamics. Here, we employ one- and two-photon transient absorption spectroscopy to selectively probe the dynamics of charge carriers from surface and bulk regions of methylammonium lead bromide thin films. Differences in the transient absorption spectra indicate that an energy gradient of approximately 100 meV is formed between the higher band-gap surface and lower band-gap bulk regions. Thus, during their lifetime, photoexcited carriers move away from the surface to recombine in the bulk, where our experiments detect long-lived charge populations despite the significant band splitting that has conventionally been assumed to inhibit efficient radiative recombination. Supported by first-principles calculations, we demonstrate that bright emission can still arise from the bulk with states that occupy a wide range of momenta in the vicinity of the band extrema, which show strong dipole transitions. Our results report that photoexcitations in the hybrid perovskites avoid defect-rich surface regions, and that particularly strong emission is generated from accumulated excitation populations in the bulk. Published by the American Physical Society 2024

Funder

National Natural Science Foundation of China

U.S. Department of Energy

Office of Science

Basic Energy Sciences

Doctoral Training in Graphene Technology

EPSRC NI

DFG Emmy Noether Programme

Winton Programme for the Physics of Sustainability

European Union’s Horizon 2020

Marie Skłodowska-Curie

National Energy Research Scientific Computing Center

Publisher

American Physical Society (APS)

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