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March 14, 2026National Science Open1 citationsOpen Access

In-situ organic cation evolution driven sequential crystal transformation in hybrid metal halides

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WHWenqing HanNankai UniversityJGJunjie GuanNankai UniversityXGXufan GuoNankai University

Key Points

  • The central aim is to explore how sequentially generated organic cations can drive structural evolution in hybrid metal halides.
  • In-situ generation of organic cations from DMSO and acetone under controlled conditions.
  • Stepwise reaction to incorporate organic cations into the crystal lattice of hybrid materials.
  • Characterization of the physicochemical properties and structural changes of the resulting materials.
  • Three structurally correlated types of organic-inorganic hybrid metal halides were achieved.
  • The materials retained their inorganic photoactive units while showing systematic property changes.
  • Revealed a dynamic mechanism between evolving organic cations and the inorganic framework.

Abstract

The properties of organic-inorganic hybrid metal halides (OIHMHs) strongly hinge on their crystal structures. However, structural diversity regulation based on organic-cation design or external stimuli is hindered by the limited diversity of available cations and the random structural changes. Here, we utilize in-situ sequentially generated organic cations from a stepwise reaction between DMSO and acetone to drive a continuous and unidirectional single-crystal-to-single-crystal transformation in OIHMHs, enabling well-defined and predictable structural evolution. The intermediate dimethyl(2-oxopropyl)sulfonium and product trimethylsulfonium cations are sequentially generated and incorporated into the crystal lattice, giving rise to three types of structurally correlated OIHMHs in both Bi- and Sb-based systems. The resulting OIHMH materials preserve the inorganic photoactive unit while exhibiting systematic changes in their physicochemical properties, revealing a dynamic cooperative mechanism between evolving organic cations and the adaptive inorganic octahedral framework. This work demonstrates the feasibility of intermediate cations generated by organic reactions to serve as an underutilized A-site organic cation resource. Such an organic reaction-driven and inorganic framework-mediated strategy establishes a dynamic paradigm for structural evolution, opening a promising avenue toward precise structural modulations and diversified functionalities of OIHMH materials.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/69b4fa6fb39f7826a300b332https://doi.org/10.1360/nso/20260013
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