Geometric transformation and three-dimensional hopping of Hopf solitons
Jung-Shen B. Tai, Jin-Sheng Wu, Ivan I. Smalyukh

TL;DR
This paper demonstrates the creation and manipulation of stable 3D topological solitons called hopfions and heliknotons in liquid crystals without external confinement, revealing electric field-driven transformations and dynamics.
Contribution
It introduces a new material system where 3D solitons are stable without external confinement and shows electric field control of their transformations and motion.
Findings
Electric fields enable inter-transformations between hopfions and heliknotons.
Stable 3D solitons can be achieved by tuning anisotropy in liquid crystal mixtures.
Numerical modeling accurately reproduces soliton structures and dynamics.
Abstract
3D topological solitons are marvels of mathematical physics that arise in theoretical models in elementary particle and nuclear physics, condensed matter, and cosmology. A particularly interesting type of them is described by the mathematical Hopf map from a hypersphere to an ordinary sphere, which in the physical 3D space exhibits inter-linked circle-like or knotted localized regions of constant order parameter values. Despite their prevalence in models, such solitons remained experimentally elusive until recently, when hopfions were discovered in colloids and chiral liquid crystals, whereas the so-called "heliknotons" were found both individually and within triclinic 3D lattices while smoothly embedded in a helical background of chiral liquid crystals. Constrained by mathematical theorems, stability of these 3D excitations is thought to rely on a delicate interplay of competing free…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Micro and Nano Robotics · Spectroscopy and Quantum Chemical Studies
