Within a simple model of attractive active Brownian particles, we predict flocking behavior and challenge the widespread idea that alignment interactions are necessary to observe this collective phenomenon. Here, we show that even nonaligning attractive interactions can lead to a flocking state. Monitoring the velocity polarization as the order parameter, we reveal the onset of a first-order transition from a disordered phase, characterized by several small clusters, to a flocking phase, where a single flocking cluster is emerging. The scenario is confirmed by studying the spatial connected correlation function of particle velocities, which reveals scale-free behavior in flocking states and exponential-like decay for nonflocking configurations. Our predictions can be tested in microscopic and macroscopic experiments showing flocking, such as animals, migrating cells, and active colloids.

Flocking without alignment interactions in attractive active Brownian particles / Caprini, L; Löwen, L. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 130:(2023), pp. 1-7. [10.1103/PhysRevLett.130.148202]

Flocking without alignment interactions in attractive active Brownian particles

Caprini L;
2023

Abstract

Within a simple model of attractive active Brownian particles, we predict flocking behavior and challenge the widespread idea that alignment interactions are necessary to observe this collective phenomenon. Here, we show that even nonaligning attractive interactions can lead to a flocking state. Monitoring the velocity polarization as the order parameter, we reveal the onset of a first-order transition from a disordered phase, characterized by several small clusters, to a flocking phase, where a single flocking cluster is emerging. The scenario is confirmed by studying the spatial connected correlation function of particle velocities, which reveals scale-free behavior in flocking states and exponential-like decay for nonflocking configurations. Our predictions can be tested in microscopic and macroscopic experiments showing flocking, such as animals, migrating cells, and active colloids.
2023
active Brownian particles; attractive interactions; collective phenomena; correlation function; disordered phasis; first order transitions; order parameter; particle velocities; simple modeling; small clusters
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Flocking without alignment interactions in attractive active Brownian particles / Caprini, L; Löwen, L. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 130:(2023), pp. 1-7. [10.1103/PhysRevLett.130.148202]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1706369
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