Topological localisation and motility of active knots

Fuente: arXiv
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Autori principali: Bonato, Andrea, Marenduzzo, Davide, Orlandini, Enzo, Negro, Giuseppe
Natura: Preprint
Pubblicazione: 2026
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author Bonato, Andrea
Marenduzzo, Davide
Orlandini, Enzo
Negro, Giuseppe
author_facet Bonato, Andrea
Marenduzzo, Davide
Orlandini, Enzo
Negro, Giuseppe
contents Nonequilibrium active polymers provide a minimal framework to investigate biopolymers such as DNA and chromatin under the action of molecular motors. Here we study active ring polymers with controlled topology and show that knot type qualitatively determines their nonequilibrium behaviour. We find that activity induces opposite localisation responses in different topological families: torus knots systematically delocalise and inflate, whereas twist knots tighten and remain localised. We trace this divergent behaviour to the distinct symmetry properties of their tangent fields, which control the alignment of active forces along the chain. We show that topology also governs internal and emergent dynamics. Active torus knots behave as soft chiral self-propelled particles exhibiting persistent motion with a well-defined handedness fixed by their topological chirality. In contrast, achiral knots show no net handedness. The knot thus acts as a deformable topological quasiparticle whose morphology and propulsion are selected by topology. These results suggest potential routes toward programmable soft chiral particles with controllable morphology and emergent motility modes.
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id arxiv_https___arxiv_org_abs_2603_15591
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Topological localisation and motility of active knots
Bonato, Andrea
Marenduzzo, Davide
Orlandini, Enzo
Negro, Giuseppe
Soft Condensed Matter
Nonequilibrium active polymers provide a minimal framework to investigate biopolymers such as DNA and chromatin under the action of molecular motors. Here we study active ring polymers with controlled topology and show that knot type qualitatively determines their nonequilibrium behaviour. We find that activity induces opposite localisation responses in different topological families: torus knots systematically delocalise and inflate, whereas twist knots tighten and remain localised. We trace this divergent behaviour to the distinct symmetry properties of their tangent fields, which control the alignment of active forces along the chain. We show that topology also governs internal and emergent dynamics. Active torus knots behave as soft chiral self-propelled particles exhibiting persistent motion with a well-defined handedness fixed by their topological chirality. In contrast, achiral knots show no net handedness. The knot thus acts as a deformable topological quasiparticle whose morphology and propulsion are selected by topology. These results suggest potential routes toward programmable soft chiral particles with controllable morphology and emergent motility modes.
title Topological localisation and motility of active knots
topic Soft Condensed Matter
url https://arxiv.org/abs/2603.15591