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    Deformation-Potential-Driven Photostriction in Layered Ferroelectrics

    S. Puri1, R. Rodriguez1, C. Dansou1,2, L. Bouric1,2, A. Sheibani1, C. Paillard1,2,3, L. Bellaiche1,2,4, and H. Nakamura1,2,*

    • *Contact author: hnakamur@uark.edu

    Phys. Rev. Lett. 137, 076904 – Published 13 August, 2026

    DOI: https://doi.org/10.1103/3z14-zzj7

    Abstract

    The coupling between electronic excitations and lattice deformation in van der Waals ferroelectrics is governed by a competition between the electron deformation potential and the inverse piezoelectric effect. While theory predicts that piezoelectric screening should drive a polar-axis contraction in monolayer group-IV monochalcogenides, we demonstrate that, in multilayer tin monosulfide (SnS), the deformation potential provides the dominant contribution, driving a polar-axis expansion even within ferroelectric domains. By correlating polarization-resolved second-harmonic generation microscopy with ultrafast reflectance spectroscopy and first-principles calculations, we resolve the anisotropic lattice response and disentangle intrinsic photostrictive strain from extrinsic thin-film interference artifacts. These results establish a microscopic hierarchy of photostrictive mechanisms and position stacking-engineered SnS as a platform for ultrafast optomechanical transduction.

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