The possibility of extracting more work from a physical system thanks to the information obtained from measurements has been a topic of fundamental interest in the context of thermodynamics since the formulation of the Maxwell’s demon thought experiment. We here consider this problem from the perspective of an open quantum battery interacting with an environment that can be continuously measured. By modeling it via a continuously monitored collisional model, we show how to implement the corresponding dynamics as a quantum circuit, including the final conditional feedback unitary evolution that allows to enhance the amount of work extracted. By exploiting the flexibility of IBM quantum computers and by properly modelling the corresponding quantum circuit, we experimentally simulate the work extraction protocol showing how the obtained experimental values of the daemonic extracted work are close to their theoretical upper bound quantified by the so-called daemonic ergotropy. We also demonstrate how by properly modelling the noise affecting the quantum circuit, one can improve the work extraction protocol by optimizing the corresponding extraction unitary feedback operation.

Experimental simulation of daemonic work extraction in open quantum batteries on a digital quantum computer / S. Navid Elyasi, M.A.C. Rossi, M.G. Genoni. - In: QUANTUM SCIENCE AND TECHNOLOGY. - ISSN 2058-9565. - 10:2(2025 Apr 01), pp. 025017.1-025017.17. [10.1088/2058-9565/adae2d]

Experimental simulation of daemonic work extraction in open quantum batteries on a digital quantum computer

M.G. Genoni
Ultimo
2025

Abstract

The possibility of extracting more work from a physical system thanks to the information obtained from measurements has been a topic of fundamental interest in the context of thermodynamics since the formulation of the Maxwell’s demon thought experiment. We here consider this problem from the perspective of an open quantum battery interacting with an environment that can be continuously measured. By modeling it via a continuously monitored collisional model, we show how to implement the corresponding dynamics as a quantum circuit, including the final conditional feedback unitary evolution that allows to enhance the amount of work extracted. By exploiting the flexibility of IBM quantum computers and by properly modelling the corresponding quantum circuit, we experimentally simulate the work extraction protocol showing how the obtained experimental values of the daemonic extracted work are close to their theoretical upper bound quantified by the so-called daemonic ergotropy. We also demonstrate how by properly modelling the noise affecting the quantum circuit, one can improve the work extraction protocol by optimizing the corresponding extraction unitary feedback operation.
collisional models; daemonic ergotropy; open quantum systems; quantum computing; quantum thermodynamics; work extraction;
Settore PHYS-04/A - Fisica teorica della materia, modelli, metodi matematici e applicazioni
   Efficient simulation and design of quantum CONtrol sTRategies for mAny-Body quAntum SystemS (CONTRABASS)
   CONTRABASS
   MINISTERO DELL'UNIVERSITA' E DELLA RICERCA
   2022KB2JJM_001
1-apr-2025
6-feb-2025
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1165655
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