Two-dimensional sliding ferroelectrics, with their unique stacking degrees of freedom, offer a different approach to manipulate polarization by interlayer sliding. Bending sliding ferroelectrics inevitably leads to interlayer sliding motion, thus altering stacking orders and polarization properties. Here, by using machine-learning force field, we investigate the effects of bending deformation on geometries, stackings, energies, and polarizations in sliding ferroelectric bilayer h-BN and 3R-MoS2. We predict that bent ferroelectric bilayer forms irreversible kinks instead of arc when the bending angle exceeds a critical value. We demonstrate that the kinks originate from the competition between bending energy and interlayer van der Waals energy. The kink contains a ferroelectric domain wall that reverses the polarization, effectively inducing a flexoelectric effect. We term this phenomenon "sliding flexoelectricity" to distinguish it from conventional strain-gradient-induced flexoelectricity.
@article{arxiv.2408.00445,
title = {Sliding Flexoelectricity in Two-Dimensional van der Waals Systems},
author = {Ri He and Hua Wang and Fenglin Deng and Yuxiang Gao and Binwen Zhang and Yubai Shi and Run-Wei Li and Zhicheng Zhong},
journal= {arXiv preprint arXiv:2408.00445},
year = {2024}
}
Comments
4 figures in the maintext, 11 figures in the Supplemental Material