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Dissipation bounds precision of current response to kinetic perturbations

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arxiv 2406.08361 v3 pith:HEDVM5MN submitted 2024-06-12 cond-mat.stat-mech

classification cond-mat.stat-mech
keywords precisiondissipationperturbationsresponseboundscurrentinequalitykinetic
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The precision of currents in Markov networks is bounded by dissipation via the so-called thermodynamic uncertainty relation (TUR). In our work, we demonstrate a similar inequality that bounds the precision of the static current response to perturbations of kinetic barriers. Perturbations of such type, which affect only the system kinetics but not the thermodynamic forces, are highly important in biochemistry and nanoelectronics. We prove that our inequality cannot be derived from the standard TUR. Instead, it implies the standard TUR and provides an even tighter bound for dissipation. We also provide a procedure for obtaining the optimal response precision for a given model.

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  1. Finite-frequency fluctuation-response bounds for open quantum systems

    quant-ph 2026-05 unverdicted novelty 7.0 of 10

    A finite-frequency fluctuation-response inequality bounds the measured lock-in response-to-noise matrix by the output-field quantum Fisher information rate for Markovian open quantum systems.

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