Photostriction-tunable Polarization and Structural Dynamics in Interlayer Sliding Ferroelectrics
Photostriction-tunable Polarization and Structural Dynamics in Interlayer Sliding Ferroelectrics
Two-dimensional ferroelectrics with robust polarization offer promising opportunities for non-volatile memory, field-effect transistors, and optoelectronic devices. However, the impact of lattice deformation on polarization and photoinduced structural response remains poorly understood. Here, we employ first-principles calculations to demonstrate photodoping-induced lattice expansion in rhombohedrally stacked bilayer MoS2, revealing a strong coupling between photodoping carrier and lattice structure. We identify a pronounced photostrictive response in sliding ferroelectrics, wherein electron-hole excitation leads to substantial in-plane expansion, increased interlayer spacing, and enhanced ferroelectric polarization. This strain-induced modulation drives significant bandgap renormalization. The photostriction-tunable polarization and structural dynamics arise from the strong electromechanical coupling inherent to the non-centrosymmetric rhombohedral stacking. The findings provide critical insights into the nonthermal lattice expansion governing sliding ferroelectrics at atomic-scale timescales, while simultaneously laying the groundwork for next-generation electronic and memory technologies by leveraging lattice-tunable polarization switching.
Kun Yang、Jianxin Yu、Jia Zhang、Sheng Meng、Jin Zhang
物理学
Kun Yang,Jianxin Yu,Jia Zhang,Sheng Meng,Jin Zhang.Photostriction-tunable Polarization and Structural Dynamics in Interlayer Sliding Ferroelectrics[EB/OL].(2025-05-29)[2025-06-28].https://arxiv.org/abs/2505.24186.点此复制
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