Morphology, Polarization Patterns, Compression, and Entropy Production in Phase-Separating Active Dumbbell Systems

Fuente: arXiv
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Autori principali: Carenza, Lucio Mauro, Caporusso, Claudio Basilio, Digregorio, Pasquale, Suma, Antonio, Gonnella, Giuseppe, Semeraro, Massimiliano
Natura: Preprint
Pubblicazione: 2025
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author Carenza, Lucio Mauro
Caporusso, Claudio Basilio
Digregorio, Pasquale
Suma, Antonio
Gonnella, Giuseppe
Semeraro, Massimiliano
author_facet Carenza, Lucio Mauro
Caporusso, Claudio Basilio
Digregorio, Pasquale
Suma, Antonio
Gonnella, Giuseppe
Semeraro, Massimiliano
contents Polar patterns and topological defects are ubiquitous in active matter. In this paper, we study a paradigmatic polar active dumbbell system through numerical simulations, to clarify how polar patterns and defects emerge and shape evolution. We focus on the interplay between these patterns and morphology, domain growth, irreversibility, and compressibility, tuned by dumbbell rigidity and interaction strength. Our results show that, when separated through MIPS, dumbbells with softer interactions can slide one relative to each other and compress more easily, producing blurred hexatic patterns, polarization patterns extended across entire hexatically varied domains, and stronger compression effects. Analysis of isolated domains reveals the consistent presence of inward-pointing topological defects that drive cluster compression and generate non-trivial density profiles, whose magnitude and extension are ruled by the rigidity of the pairwise potential. Investigation of entropy production reveals instead that clusters hosting an aster (spiral) defect are characterized by a flat (increasing) entropy profile mirroring the underlying polarization structure, thus suggesting an alternative avenue to distinguish topological defects on thermodynamical grounds. Overall, our study highlights how interaction strength and defect-compression interplay affect cluster evolution in particle-based active models, and also provides connections with recent studies of continuum polar active field models.
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id arxiv_https___arxiv_org_abs_2510_24351
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Morphology, Polarization Patterns, Compression, and Entropy Production in Phase-Separating Active Dumbbell Systems
Carenza, Lucio Mauro
Caporusso, Claudio Basilio
Digregorio, Pasquale
Suma, Antonio
Gonnella, Giuseppe
Semeraro, Massimiliano
Soft Condensed Matter
Polar patterns and topological defects are ubiquitous in active matter. In this paper, we study a paradigmatic polar active dumbbell system through numerical simulations, to clarify how polar patterns and defects emerge and shape evolution. We focus on the interplay between these patterns and morphology, domain growth, irreversibility, and compressibility, tuned by dumbbell rigidity and interaction strength. Our results show that, when separated through MIPS, dumbbells with softer interactions can slide one relative to each other and compress more easily, producing blurred hexatic patterns, polarization patterns extended across entire hexatically varied domains, and stronger compression effects. Analysis of isolated domains reveals the consistent presence of inward-pointing topological defects that drive cluster compression and generate non-trivial density profiles, whose magnitude and extension are ruled by the rigidity of the pairwise potential. Investigation of entropy production reveals instead that clusters hosting an aster (spiral) defect are characterized by a flat (increasing) entropy profile mirroring the underlying polarization structure, thus suggesting an alternative avenue to distinguish topological defects on thermodynamical grounds. Overall, our study highlights how interaction strength and defect-compression interplay affect cluster evolution in particle-based active models, and also provides connections with recent studies of continuum polar active field models.
title Morphology, Polarization Patterns, Compression, and Entropy Production in Phase-Separating Active Dumbbell Systems
topic Soft Condensed Matter
url https://arxiv.org/abs/2510.24351