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Updated: Aug 28, 2025

An Analog Macroscopic Technique for Studying Molecular Hydrodynamic Processes in Dense Gases and Liquids
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Joint measurability in nonequilibrium quantum thermodynamics.

Konstantin Beyer1, Roope Uola2, Kimmo Luoma1,3

  • 1Institut für Theoretische Physik, Technische Universität Dresden, D-01062 Dresden, Germany.

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|September 16, 2022
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Summary

This study explores quantum work and fluctuation theorems, showing that generalized unsharp measurements overcome previous limitations. This allows for accurate quantum work and free energy difference calculations using a Jarzynski equality.

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Area of Science:

  • Quantum Mechanics
  • Statistical Mechanics
  • Quantum Measurement Theory

Background:

  • Quantum work and fluctuation theorems are often analyzed using projective two-point measurement (TPM) schemes.
  • A known no-go theorem prevents work observables from satisfying both average work conditions and TPM statistics for diagonal input states with projective measurements.

Purpose of the Study:

  • To extend the framework of quantum work and fluctuation theorems beyond restrictive projective measurements.
  • To investigate the measurability of quantum work using generalized unsharp measurements.
  • To determine the information extractable about work and fluctuations from these generalized measurements.

Main Methods:

  • Investigated quantum work and fluctuation theorems within quantum measurement theory.
  • Extended the analysis from projective two-point measurement (TPM) schemes to unsharp measurements.
  • Demonstrated that the no-go theorem is circumvented when observables are jointly measurable for intermediate unitary evolution.

Main Results:

  • The no-go theorem for quantum work observables does not hold under generalized joint measurability conditions.
  • A model with unsharp energy measurements was constructed, defining visibility bounds for joint measurability.
  • Unsharp measurements enable the construction of a single apparatus for accurate average work determination and free energy difference calculation via Jarzynski equality.

Conclusions:

  • Unsharp quantum measurements offer a more flexible and experimentally viable approach to studying quantum work and fluctuations.
  • Generalized measurements overcome fundamental limitations of projective measurements in this context.
  • This work provides a pathway for experimentally accessing quantum work statistics and related thermodynamic quantities.