Experimental demonstration of generalized quantum fluctuation theorems in the presence of coherence
arXiv:2506.00524 · doi:10.1126/sciadv.adq6014
Abstract
Fluctuation theorems have elevated the second law of thermodynamics to a statistical realm by establishing a connection between time-forward and time-reversal probabilities, providing invaluable insight into nonequilibrium dynamics. While well established in classical systems, their quantum generalization, incorporating coherence and the diversity of quantum noise, remains open. We report the experimental validation of a quantum fluctuation theorem (QFT) in a photonic system, applicable to general quantum processes with nonclassical characteristics, including quasi-probabilistic descriptions of entropy production and multiple time-reversal processes. Our experiment confirms that the ratio between the quasi-probabilities of the time-forward and any multiple time-reversal processes obeys a generalized Crooks QFT. Moreover, coherence induced by a quantum process leads to the imaginary components of quantum entropy production, governing the phase factor in the QFT. These findings underscore the fundamental symmetry between a general quantum process and its time reversal, providing an elementary toolkit to explore noisy quantum information processing.
References in corpus (11)
- Fluctuation theorems: Work is not an observable
- Experimental Test of Quantum Jarzynski Equality with a Trapped Ion System
- Test of Jarzynski and Crooks fluctuation relations in an electronic system
- Experimental Free Energy Surface Reconstruction From Single-Molecule Force Spectroscopy Using Jarzynski's Equality
- Non-equilibrium quantum fluctuations of work
- Employing trapped cold ions to verify the quantum Jarzynski equality
- Quantum Operation Time Reversal
- Using a quantum work meter to test non-equilibrium fluctuation theorems
- Quantum Simulation of single-qubit thermometry using linear optics
- Experimental verification of fluctuation relations with a quantum computer
- Experimentally reducing the quantum measurement back-action in work distributions by a collective measurement