Collective motion in large deviations of active particles.

We analyze collective motion that occurs during rare (large deviation) events in systems of active particles, both numerically and analytically. We discuss the associated dynamical phase transition to collective motion, which occurs when the active work is biased towards larger values, and is associated with alignment of particles' orientations. A finite biasing field is needed to induce spontaneous symmetry breaking, even in large systems. Particle alignment is computed exactly for a system of two particles. For many-particle systems, we analyze the symmetry breaking by an optimal-control representation of the biased dynamics, and we propose a fluctuating hydrodynamic theory that captures the emergence of polar order in the biased state.

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Publication Details

Journal
Apollo
Published
2026-10-01
DOI
https://doi.org/10.17863/cam.131263
Primary Topic
Micro and Nano Robotics
Type
article
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Collective motion in large deviations of active particles.

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Apollo
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article

Collective motion in large deviations of active particles.

Robert L. Jack, Yann-Edwin Keta, Étienne Fodor, Frédéric van Wijland, Michael E. Cates
article en

Abstract

We analyze collective motion that occurs during rare (large deviation) events in systems of active particles, both numerically and analytically. We discuss the associated dynamical phase transition to collective motion, which occurs when the active work is biased towards larger values, and is associated with alignment of particles' orientations. A finite biasing field is needed to induce spontaneous symmetry breaking, even in large systems. Particle alignment is computed exactly for a system of two particles. For many-particle systems, we analyze the symmetry breaking by an optimal-control representation of the biased dynamics, and we propose a fluctuating hydrodynamic theory that captures the emergence of polar order in the biased state.

Apollo
Reduced inequalities
Openalex Percentile: Top 18%
Micro and Nano Robotics
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