Reduction of thermodynamic uncertainty by a virtual qubit
Yang Li, Fu-Lin Zhang

TL;DR
This paper investigates how quantum coherence in a virtual qubit can reduce thermodynamic uncertainty in quantum thermal machines, revealing quantum effects that can surpass classical bounds and optimize performance.
Contribution
It introduces a framework for analyzing quantum contributions to thermodynamic uncertainty, highlighting the role of coherence in reducing uncertainty beyond classical limits.
Findings
Quantum coherence can lower thermodynamic uncertainty.
Effective classical models reproduce steady-state currents.
Conditions for surpassing classical TUR are identified.
Abstract
The thermodynamic uncertainty relation (TUR) imposes a fundamental constraint between current fluctuations and entropy production, providing a refined formulation of the second law for micro- and nanoscale systems. Quantum violations of the classical TUR reveal genuinely quantum thermodynamic effects, which are essential for improving performance and enabling optimization in quantum technologies. In this work, we analyze the TUR in a class of paradigmatic quantum thermal-machine models whose operation is enabled by coherent coupling between two energy levels forming a virtual qubit. Steady-state coherences are confined to this virtual-qubit subspace, while in the absence of coherent coupling the system satisfies detailed balance with the thermal reservoirs and supports no steady-state heat currents. We show that the steady-state currents and entropy production can be fully reproduced by…
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Taxonomy
TopicsAdvanced Thermodynamics and Statistical Mechanics · Quantum many-body systems · Quantum Information and Cryptography
