Stability of discrete-symmetry flocks: sandwich state, traveling domains and motility-induced pinning

Fuente: arXiv
Salvato in:
Dettagli Bibliografici
Autori principali: Chatterjee, Swarnajit, Karmakar, Mintu, Mangeat, Matthieu, Rieger, Heiko, Paul, Raja
Natura: Preprint
Pubblicazione: 2025
Soggetti:
Accesso online:
Tags: Aggiungi Tag
Nessun Tag, puoi essere il primo ad aggiungerne!!
_version_ 1866908706596192256
author Chatterjee, Swarnajit
Karmakar, Mintu
Mangeat, Matthieu
Rieger, Heiko
Paul, Raja
author_facet Chatterjee, Swarnajit
Karmakar, Mintu
Mangeat, Matthieu
Rieger, Heiko
Paul, Raja
contents Polar flocks in discrete active systems are often assumed to be robust, yet recent studies reveal their fragility under both imposed and spontaneous fluctuations. Here, we revisit the four-state active Potts model (APM) and show that its globally ordered phase is metastable across a broad swath of parameter space. Small counter-propagating droplets disrupt the flocking phase by inducing a persistent sandwich state, where the droplet-induced opposite-polarity lane remains embedded within the original flock, particularly pronounced at low noise, influenced by spatial anisotropy. In contrast, small transversely propagating droplets, when introduced into the flock, can trigger complete phase reversal due to their alignment orthogonal to the dominant flow and their enhanced persistence. At low diffusion and strong self-propulsion, such transverse droplets also emerge spontaneously, fragmenting the flock into multiple traveling domains and giving rise to a short-range order (SRO) regime. We further identify a motility-induced pinning (MIP) transition in small diffusion and low-temperature regimes when particles of opposite polarity interact, flip their state, hop, and pin an interface. Our comprehensive phase diagrams, encompassing full reversal, sandwich coexistence, stripe bands, SRO, and MIP, delineate how thermal fluctuations, self-propulsion strength, and diffusion govern flock stability in discrete active matter systems.
format Preprint
id arxiv_https___arxiv_org_abs_2507_08187
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Stability of discrete-symmetry flocks: sandwich state, traveling domains and motility-induced pinning
Chatterjee, Swarnajit
Karmakar, Mintu
Mangeat, Matthieu
Rieger, Heiko
Paul, Raja
Soft Condensed Matter
Statistical Mechanics
Polar flocks in discrete active systems are often assumed to be robust, yet recent studies reveal their fragility under both imposed and spontaneous fluctuations. Here, we revisit the four-state active Potts model (APM) and show that its globally ordered phase is metastable across a broad swath of parameter space. Small counter-propagating droplets disrupt the flocking phase by inducing a persistent sandwich state, where the droplet-induced opposite-polarity lane remains embedded within the original flock, particularly pronounced at low noise, influenced by spatial anisotropy. In contrast, small transversely propagating droplets, when introduced into the flock, can trigger complete phase reversal due to their alignment orthogonal to the dominant flow and their enhanced persistence. At low diffusion and strong self-propulsion, such transverse droplets also emerge spontaneously, fragmenting the flock into multiple traveling domains and giving rise to a short-range order (SRO) regime. We further identify a motility-induced pinning (MIP) transition in small diffusion and low-temperature regimes when particles of opposite polarity interact, flip their state, hop, and pin an interface. Our comprehensive phase diagrams, encompassing full reversal, sandwich coexistence, stripe bands, SRO, and MIP, delineate how thermal fluctuations, self-propulsion strength, and diffusion govern flock stability in discrete active matter systems.
title Stability of discrete-symmetry flocks: sandwich state, traveling domains and motility-induced pinning
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2507.08187