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Harnessing non-equilibrium forces to optimize work extraction

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arxiv 2504.07049 v1 pith:3SZTTBKO submitted 2025-04-09 cond-mat.stat-mech cond-mat.soft

classification cond-mat.stat-mechcond-mat.soft
keywords forcesnon-equilibriumworkoptimaldrivingexploitinginformationmicroscopic
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While optimal control theory offers effective strategies for minimizing energetic costs in noisy microscopic systems over finite durations, a significant opportunity lies in exploiting the temporal structure of non-equilibrium forces. We demonstrate this by presenting exact analytical forms for the optimal protocol and the corresponding work for any driving force and protocol duration. We also derive a general quasistatic bound on the work, relying only on the coarse-grained, time-integrated characteristics of the applied forces. Notably, we show that the optimal protocols often automatically act as information engines that harness information about non-equilibrium forces and an initial state measurement to extract work. These findings chart new directions for designing adaptive, energy-efficient strategies in noisy, time-dependent environments, as illustrated through our examples of periodic driving forces and active matter systems. By exploiting the temporal structure of non-equilibrium forces, this largely unexplored approach holds promise for substantial performance gains in microscopic devices operating at the nano- and microscale.

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  1. Time-energy tradeoff in stochastic resetting using optimal control

    cond-mat.stat-mech 2025-07 conditional novelty 6.0 of 10

    An optimal transport protocol for a harmonically trapped Brownian particle, with work γΔλ²/tf, sets a lower time-energy bound for finite-time stochastic resetting via Eq. (5).

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