Opposite and reversible optical switching in soft-lattice halide perovskites using light and heat.

Dubey, Mansha; Deppe, Tristan J; Kanak, Andrii; Hering, Abigail R; Lyu, Peifen; Kopper, Declan; Escobar, Paulina V; Kovalenko, Maksym V et al. · Sci Adv · 2026

basic_science · Level V

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Abstract

Halide perovskites have soft lattices with strong interactions between electronic and structural degrees of freedom, making them promising for next-generation optoelectronics. Recent studies have uncovered their unique photo- and thermally induced optical behavior, yet the potential for dynamic, optical switching remains underexplored. Here, we demonstrate reversible and diametrically opposite optical switching in single-crystal cesium lead bromide (CsPbBr<sub>3</sub>), driven independently by either above-bandgap illumination or thermal excitation. We measure tunable changes in mid-infrared transmission from 3 to 20 micrometers, exceeding 10% at 20 micrometers, with opposite polarity under light and heat, and modulation times <1 millisecond. This antithetical behavior arises from a polaron-like lattice distortion under illumination (reducing transmission), and from lattice expansion from heating partnered with the material's negative thermo-optic coefficient (increasing transparency). Our findings establish inorganic halide perovskites as a viable material platform for reconfigurable photonics where transmission can be controlled independently through distinct mechanisms intrinsic to their soft lattices.