Polar solitons in a nonpolar chiral soft matter system

Fuente: arXiv
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Main Authors: Chen, Jiahao, Tang, Xingzhou, Ding, Yang, Chakraborty, Susanta, Aya, Satoshi, Li, Bingxiang, Lu, Yanqing
Format: Preprint
Published: 2025
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author Chen, Jiahao
Tang, Xingzhou
Ding, Yang
Chakraborty, Susanta
Aya, Satoshi
Li, Bingxiang
Lu, Yanqing
author_facet Chen, Jiahao
Tang, Xingzhou
Ding, Yang
Chakraborty, Susanta
Aya, Satoshi
Li, Bingxiang
Lu, Yanqing
contents Polar solitons, i.e., solitonic waves accompanying asymmetry of geometry or phase, have garnered attention in polar systems, such as ferroelectric or magnetoelectric materials, where they play a critical role in topological transitions and nonreciprocal responses to external fields. A key question is whether such polar solitons can emerge in nonpolar systems, where intrinsic polarity is absent. Here, we demonstrate an unprecedented polar soliton with nematic order in a nonpolar and chiral liquid crystal system by applying an alternating electric field. The soliton is corn-kernel-shaped, displaying a pair of oppositely charged topological defects at its two ends. While head-to-head collision between the solitons leads to repulsion, head-to-tail collision attracts the solitons into a single polar soliton. A rich variety of solitonic kinetics, such as rectilinear translation and circulation motions, can be activated by controlling the voltage and frequency of an electric field. Simulations reveal that the formation of the polar solitons is achieved through balancing the electric and nematic elastic energies, while the flexoelectric effect drives their rotational behaviors. The discovery of polar solitons in nonpolar systems expands the understanding of topological solitons, opening new avenues for dynamic control in soft matter systems, with potential applications in nonreciprocal responsive materials and topological information storage.
format Preprint
id arxiv_https___arxiv_org_abs_2506_16778
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Polar solitons in a nonpolar chiral soft matter system
Chen, Jiahao
Tang, Xingzhou
Ding, Yang
Chakraborty, Susanta
Aya, Satoshi
Li, Bingxiang
Lu, Yanqing
Optics
Soft Condensed Matter
Polar solitons, i.e., solitonic waves accompanying asymmetry of geometry or phase, have garnered attention in polar systems, such as ferroelectric or magnetoelectric materials, where they play a critical role in topological transitions and nonreciprocal responses to external fields. A key question is whether such polar solitons can emerge in nonpolar systems, where intrinsic polarity is absent. Here, we demonstrate an unprecedented polar soliton with nematic order in a nonpolar and chiral liquid crystal system by applying an alternating electric field. The soliton is corn-kernel-shaped, displaying a pair of oppositely charged topological defects at its two ends. While head-to-head collision between the solitons leads to repulsion, head-to-tail collision attracts the solitons into a single polar soliton. A rich variety of solitonic kinetics, such as rectilinear translation and circulation motions, can be activated by controlling the voltage and frequency of an electric field. Simulations reveal that the formation of the polar solitons is achieved through balancing the electric and nematic elastic energies, while the flexoelectric effect drives their rotational behaviors. The discovery of polar solitons in nonpolar systems expands the understanding of topological solitons, opening new avenues for dynamic control in soft matter systems, with potential applications in nonreciprocal responsive materials and topological information storage.
title Polar solitons in a nonpolar chiral soft matter system
topic Optics
Soft Condensed Matter
url https://arxiv.org/abs/2506.16778