An Inorganic Liquid Crystalline Dispersion with 2D Ferroelectric Moieties
Abstract
Electro-optical effect based liquid crystal devices have been extensively used in optical modulation techniques, in which the Kerr coefficient reflects the sensitivity of the liquid crystals and determines the strength of the device operational electric field. The Peterlin-Stuart theory and the O'Konski model jointly indicate that a giant Kerr coefficient could be obtained in a material with both a large geometrical anisotropy and an intrinsic polarization, but such a material is not yet reported. Here we reveal a ferroelectric effect in a monolayer two-dimensional mineral vermiculite. A large geometrical anisotropy factor and a large inherent electric dipole together raise the record value of Kerr coefficient by an order of magnitude, till m V. This finding enables an ultra-low operational electric field of - V m and the fabrication of electro-optical devices with an inch-level electrode separation, which is not practical previously. Because of its high ultraviolet stability (decay <1% under ultraviolet exposure of 1000 hours), large-scale, and energy-efficiency, prototypical displayable billboards have been fabricated for outdoor interactive scenes. The work provides new insights for both liquid crystal optics and two-dimensional ferroelectrics.
Keywords
Cite
@article{arxiv.2502.00477,
title = {An Inorganic Liquid Crystalline Dispersion with 2D Ferroelectric Moieties},
author = {Ziyang Huang and Zehao Zhang and Rongjie Zhang and Baofu Ding and Liu Yang and Keyou Wu and Youan Xu and Gaokuo Zhong and Chuanlai Ren and Jiarong Liu and Yugan Hao and Menghao Wu and Teng Ma and Bilu Liu},
journal= {arXiv preprint arXiv:2502.00477},
year = {2025}
}
Comments
26 pages, 3 figures. Published in National Science Review 2024, 11 (5), nwae108