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March 6, 2026Science Advances2 citationsOpen Access

In situ TEM unveils the role of residual local strain on light-induced phase segregation in halide perovskites

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ZLZhenqin LiNANuerbiya AihemaitiCXChangxian Xu

Key Points

  • This research investigates how residual local strain influences light-induced phase segregation in mixed halide perovskites.
  • In situ transmission electron microscopy was combined with photoluminescence spectroscopy.
  • Observations were made of structural changes and photocarrier behavior during phase segregation.
  • The research analyzed the relationship between residual strain and phase segregation cycles.
  • Residual local strain acts as a memory of segregation, evolving with phase segregation cycles.
  • The presence of local strain traps photocarriers, serving as nucleation sites for iodide-rich domains.
  • Halide segregation is reversible, yet the retained strain impacts subsequent phase segregation events.

Abstract

Deciphering the mechanisms governing photoinduced phase segregation in mixed halide perovskites is essential to unlock their full potential in stable, high-performance optoelectronic applications. We uncover the mechanism by which residual local strain acts as a key driving force of light-induced phase segregation. By combining in situ transmission electron microscopy with photoluminescence spectroscopy, we observe structural evolution and photocarrier behavior during phase segregation and after re-mixing. Although halide segregation is compositionally reversible, the perovskite lattice retains residual local strain, a “memory” of previously segregated halide domains, which evolves spatiotemporally with each phase segregation cycle. Residual local strain subsequently serves as a driver for successive phase segregation by trapping photocarriers and acts as the nucleation sites for iodide-rich domains. Our findings identify local strain as an intrinsic, evolving driving force of phase segregation, which offers a paradigm for improving the long-term stability of halide perovskites through strain management and compositional engineering.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69aa7077531e4c4a9ff5a52ahttps://doi.org/10.1126/sciadv.aeb3559
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