Emergent cooperative superstructures via order-disorder kinetics in molecular intercalation superlattices.

Ueda, Taiga; Matsuoka, Hideki; Aoyagi, Shungo; Kitou, Shunsuke; Zhang, Yijin; Kimura, Fumihiko; Hagiwara, Kenta; Sakano, Masato et al. · Sci Adv · 2026

basic_science · Level V

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Abstract

Molecular intercalation superlattices, formed by inserting organic molecules into van der Waals crystals, create inorganic-organic hybrid interfaces that have enabled a variety of emergent phenomena. Traditionally, the intercalated molecules have been regarded as inactive spacers, while their collective ordering have remained largely unexplored. Here, we report the discovery of a cooperative superstructure phase in molecule-intercalated niobium diselenide (NbSe<sub>2</sub>), where ordering of the guest molecules induce a superstructure in the NbSe<sub>2</sub> host lattice, characterized by a moiré structure due to incommensurability between molecular and inorganic lattices. Thermal-quench measurements show that the transition is governed by slow order-disorder kinetics, contrasting with fast charge or magnetic ordering in inorganic solids. Our findings establish molecular ordering as a route for engineering heterointerfaces, enabling thermally programmable superstructures.