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Demonstrating quantum microscopic reversibility using coherent states of light

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Title: Demonstrating quantum microscopic reversibility using coherent states of light
Authors: Bellini, M
Kwon, H
Biagi, N
Francesconi, S
Zavatta, A
Kim, MS
Item Type: Journal Article
Abstract: The principle of microscopic reversibility lies at the core of fluctuation theorems, which have extended our understanding of the second law of thermodynamics to the statistical level. In the quantum regime, however, this elementary principle should be amended as the system energy cannot be sharply determined at a given quantum phase space point. In this Letter, we propose and experimentally test a quantum generalization of the microscopic reversibility when a quantum system interacts with a heat bath through energy-preserving unitary dynamics. Quantum effects can be identified by noting that the backward process is less likely to happen in the existence of quantum coherence between the system’s energy eigenstates. The experimental demonstration has been realized by mixing coherent and thermal states in a beam splitter, followed by heterodyne detection in an optical setup. We verify that the quantum modification for the principle of microscopic reversibility is critical in the low-temperature limit, while the quantum-to-classical transition is observed as the temperature of the thermal field gets higher.
Issue Date: 20-Oct-2022
Date of Acceptance: 8-Sep-2022
URI: http://hdl.handle.net/10044/1/100332
DOI: 10.1103/physrevlett.129.170604
ISSN: 0031-9007
Publisher: American Physical Society (APS)
Start Page: 1
End Page: 6
Journal / Book Title: Physical Review Letters
Volume: 129
Issue: 17
Copyright Statement: © 2022 American Physical Society
Sponsor/Funder: Korea Institute of Science and Technology
Funder's Grant Number: n/a
Keywords: 01 Mathematical Sciences
02 Physical Sciences
09 Engineering
General Physics
Publication Status: Published
Article Number: 170604
Online Publication Date: 2022-10-20
Appears in Collections:Quantum Optics and Laser Science
Physics