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arXiv · 2604.19252

Self-propulsion protocols for swift non-equilibrium state transitions and enhanced cooling in active systems

Abstract

A control framework is proposed for inducing non-equilibrium state transitions in confined active matter, where the statistics of self-propulsion serve as the only control parameter. Positivity of the noise amplitudes and fundamental bounds on position-propulsion correlations define the admissible control space and impose speed-limits on transitions between non-equilibrium states. We show that non-stationary initial states facilitate additional speed-ups, corresponding to pre-loading the state with negative correlations. This enables active cooling protocols that outperform their passive counterparts.

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Kristian Stølevik Olsen, Hartmut Löwen. 2026-04-21. Self-propulsion protocols for swift non-equilibrium state transitions and enhanced cooling in active systems. https://arxiv.org/abs/2604.19252

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