Topology-driven collective dynamics of nematic colloidal entanglement

Author:

Jiang Jinghua1ORCID,Akomolafe Oluwafemi Isaac2ORCID,Wang Xinyu3ORCID,Asilehan Zhawure1,Tang Wentao3,Zhang Jing1ORCID,Chen Zijun1,Wang Ruijie1,Ranabhat Kamal2ORCID,Zhang Rui3ORCID,Peng Chenhui1ORCID

Affiliation:

1. Department of Physics, University of Science and Technology of China, Hefei, Anhui 230026, China

2. Department of Physics and Materials Science, The University of Memphis, Memphis, TN 38152

3. Department of Physics, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China

Abstract

Entanglement in a soft condensed matter system is enabled in the form of entangled disclination lines by using colloidal particles in nematic liquid crystals. These topological excitations are manifested as colloidal entanglement at equilibrium. How to further utilize nonequilibrium disclination lines to manipulate colloidal entanglement remains a nontrivial and challenging task. In this work, we use experiments and simulations to demonstrate the reconfigurations of nematic colloidal entanglement in light-driven spatiotemporal evolutions of disclination lines. Colloidal entanglement can sense subtle changes in the topological structures of disclination lines and realize chirality conversion. This conversion is manifested as the “domino effect” of the collective rotation of colloids in the disclination lines. By programming the topological patterns and the geometry of the disclination lines, colloidal entanglement can be assembled and split. More remarkably, a double-helix entangled structure can be formed by controlling the changes in the morphology of the disclination lines. Thus, this work will provide opportunities to program colloidal composites for smart materials and micromachines.

Publisher

Proceedings of the National Academy of Sciences

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