Reduced Barrier for Ion Migration in Mixed-Halide Perovskites

Publication date

2021-12-27

Authors

McGovern, Lucie
Grimaldi, Gianluca
Futscher, Moritz H.
Hutter, ElineORCID 0000-0002-5537-6545ISNI 0000000492896229
Muscarella, Loreta AORCID 0000-0002-0559-4085ISNI 0000000506846119
Schmidt, Moritz C.
Ehrler, Bruno

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

Halide alloying in metal halide perovskites is a useful tool for optoelectronic applications requiring a specific bandgap. However, mixed-halide perovskites show ion migration in the perovskite layer, leading to phase segregation and reducing the long-term stability of the devices. Here, we study the ion migration process in methylammonium-based mixed-halide perovskites with varying ratios of bromide to iodide. We find that the mixed-halide perovskites show two separate halide migration processes, in contrast to pure-phase perovskites, which show only a unique halide migration component. Compared to pure-halide perovskites, these processes have lower activation energies, facilitating ion migration in mixed versus pure-phase perovskites, and have a higher density of mobile ions. Under illumination, we find that the concentration of mobile halide ions is further increased and notice the emergence of a migration process involving methylammonium cations. Quantifying the ion migration processes in mixed-halide perovskites shines light on the key parameters allowing the design of bandgap-tunable perovskite solar cells with long-term stability.

Keywords

activation energy, halide, ion migration, methylammonium, mixed halide, perovskite, phase segregation, transient ion drift, Chemical Engineering (miscellaneous), Energy Engineering and Power Technology, Electrochemistry, Electrical and Electronic Engineering, Materials Chemistry

Citation

McGovern, L, Grimaldi, G, Futscher, M H, Hutter, E M, Muscarella, L A, Schmidt, M C & Ehrler, B 2021, 'Reduced Barrier for Ion Migration in Mixed-Halide Perovskites', ACS Applied Energy Materials, vol. 4, no. 12, pp. 13431-13437. https://doi.org/10.1021/acsaem.1c03095