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Maximum one-shot dissipated work from Rényi divergences

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Thermodynamics describes large-scale, slowly evolving systems. Two modern approaches generalize thermodynamics: fluctuation theorems, which concern finite-time nonequilibrium processes, and one-shot statistical mechanics, which concerns small scales and finite numbers of trials. Combining these approaches, we calculate a one-shot analog of the average dissipated work defined in fluctuation contexts: the cost of performing a protocol in finite time instead of quasistatically. The average dissipated work has been shown to be proportional to a relative entropy between phase-space densities, to a relative entropy between quantum states, and to a relative entropy between probability distributions over possible values of work. We derive one-shot analogs of all three equations, demonstrating that the order-infinity Rényi divergence is proportional to the maximum possible dissipated work in each case. These one-shot analogs of fluctuation-theorem results contribute to the unification of these two toolkits for small-scale, nonequilibrium statistical physics.
Original languageEnglish
Article number052135
JournalPhysical Review E
Volume97
Issue number5
DOIs
Publication statusPublished - 25 May 2018
Externally publishedYes

Bibliographical note

Publication details (e.g. title, author(s), publication statuses and dates) are captured on an “AS IS” and “AS AVAILABLE” basis at the time of record harvesting from the data source. Suggestions for further amendments or supplementary information can be sent to [email protected].

Funding

This work was supported by a Virginia Gilloon Fellowship; an IQIM Fellowship; a Barbara Groce Fellowship; a KITP Graduate Fellowship; NSF Grants No. PHY-0803371, No. PHY-1125565, and No. PHY-1125915; the Foundational Questions Institute (FQXi) Large Grants for “Time and the Structure of Quantum Theory” and “the Physics of the Observer” (FQXi-RFP-1614) the EPSRC; the John Templeton Foundation Grant 54914; the Leverhulme Trust; the Oxford Martin School; the NRF (Singapore); and the MoE (Singapore). The Institute for Quantum Information and Matter (IQIM) is an NSF Physics Frontiers Center with support from the Gordon and Betty Moore Foundation (GBMF-2644). V.V. and O.D. acknowledge funding from the EU Collaborative Project TherMiQ (Grant Agreement No. 618074). N.Y.H. thanks Ning Bao for conversations about high-energy scenarios.

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