Flexoelectric domain walls enable charge separation and transport in cubic perovskites
Rak D, Lorenc D, Balazs D, Zhumekenov AA, Bakr OM, Alpichshev Z. 2026. Flexoelectric domain walls enable charge separation and transport in cubic perovskites. Nature Communications. 17, 946.
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Author
Rak, DmytroISTA;
Lorenc, DusanISTA;
Balazs, DanielISTA
;
Zhumekenov, Ayan A.;
Bakr, Osman M.;
Alpichshev, ZhanybekISTA 
Corresponding author has ISTA affiliation
Department
Abstract
The exceptional energy-harvesting efficiency of lead-halide perovskites arises from unusually long photocarrier diffusion lengths and recombination lifetimes that persist even in defect-rich, solution-grown samples. Paradoxically, perovskites are also known for having very short exciton decay times. Here, we resolve this apparent contradiction by showing that key optoelectronic properties of perovskites can be explained by localized flexoelectric polarization confined to interfaces between domains of spontaneous strain. Using birefringence imaging, electrochemical staining, and zero-bias photocurrent measurements, we visualize the domain structure and directly probe the associated internal fields in nominally cubic single crystals of methylammonium lead bromide. We demonstrate that localized flexoelectric fields spatially separate electrons and holes to opposite sides of domain walls, exponentially suppressing recombination. Domain walls thus act as efficient mesoscopic transport channels for long-lived photocarriers, microscopically linking structural heterogeneity to charge transport and offering mechanistically informed design principles for perovskite solar-energy technologies.
Publishing Year
Date Published
2026-02-16
Journal Title
Nature Communications
Publisher
Springer Nature
Acknowledgement
We are grateful to A. G. Volosniev for the valuable discussions. We thank D. Milius for the assistance with microscopy. D. R. would like to thank F. Filakovský and T. Čuchráč for the valuable discussions. This research was supported by the Scientific Service Units (SSU) of ISTA through resources provided by the Imaging & Optics Facility (IOF) and the Miba Machine Shop Facility (MS).
Acknowledged SSUs
Volume
17
Article Number
946
eISSN
IST-REx-ID
Cite this
Rak D, Lorenc D, Balazs D, Zhumekenov AA, Bakr OM, Alpichshev Z. Flexoelectric domain walls enable charge separation and transport in cubic perovskites. Nature Communications. 2026;17. doi:10.1038/s41467-026-68660-5
Rak, D., Lorenc, D., Balazs, D., Zhumekenov, A. A., Bakr, O. M., & Alpichshev, Z. (2026). Flexoelectric domain walls enable charge separation and transport in cubic perovskites. Nature Communications. Springer Nature. https://doi.org/10.1038/s41467-026-68660-5
Rak, Dmytro, Dusan Lorenc, Daniel Balazs, Ayan A. Zhumekenov, Osman M. Bakr, and Zhanybek Alpichshev. “Flexoelectric Domain Walls Enable Charge Separation and Transport in Cubic Perovskites.” Nature Communications. Springer Nature, 2026. https://doi.org/10.1038/s41467-026-68660-5.
D. Rak, D. Lorenc, D. Balazs, A. A. Zhumekenov, O. M. Bakr, and Z. Alpichshev, “Flexoelectric domain walls enable charge separation and transport in cubic perovskites,” Nature Communications, vol. 17. Springer Nature, 2026.
Rak D, Lorenc D, Balazs D, Zhumekenov AA, Bakr OM, Alpichshev Z. 2026. Flexoelectric domain walls enable charge separation and transport in cubic perovskites. Nature Communications. 17, 946.
Rak, Dmytro, et al. “Flexoelectric Domain Walls Enable Charge Separation and Transport in Cubic Perovskites.” Nature Communications, vol. 17, 946, Springer Nature, 2026, doi:10.1038/s41467-026-68660-5.
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