Berry-phase-induced chiral work difference survives decoherence, evolving from an interferometric Aharonov-Bohm-like effect in unitary systems to a fringe-free signal in dissipative regimes.
Alicki, The quantum open system as a model of the heat engine, Journal of Physics A: Mathematical and General12, L103 (1979)
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A quantum Zeno dynamics protocol confines the evolution of a finite-time Otto-cycle quantum heat engine to a subspace that preserves instantaneous energy populations, recovering quasistatic efficiency with added thermodynamic costs from monitoring and switching.
N-level ground-state coherence unifies with excited-state effects to enable analytic control of effective engine temperature from near-zero to divergence in quantum heat engines.
Higher thermodynamic efficiency in preparing non-equilibrium spin states in atomic vapors directly improves the quantum Fisher information bound on magnetometer sensitivity.
Defines isoergotropic states and ergotropy-preserving operations that redistribute coherent-incoherent or displacement-squeezing components in quantum batteries without changing total ergotropy.
citing papers explorer
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Berry-Phase-Induced Chirality in Thermodynamics
Berry-phase-induced chiral work difference survives decoherence, evolving from an interferometric Aharonov-Bohm-like effect in unitary systems to a fringe-free signal in dissipative regimes.
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Zeno-Assisted Quantum Heat Engines
A quantum Zeno dynamics protocol confines the evolution of a finite-time Otto-cycle quantum heat engine to a subspace that preserves instantaneous energy populations, recovering quasistatic efficiency with added thermodynamic costs from monitoring and switching.
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Driving Quantum Heat Engines Beyond Classical Limits through Multilevel Coherence
N-level ground-state coherence unifies with excited-state effects to enable analytic control of effective engine temperature from near-zero to divergence in quantum heat engines.
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Thermodynamical aspects of optically pumped dense atomic medium
Higher thermodynamic efficiency in preparing non-equilibrium spin states in atomic vapors directly improves the quantum Fisher information bound on magnetometer sensitivity.
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Charge-Preserving Operations in Quantum Batteries
Defines isoergotropic states and ergotropy-preserving operations that redistribute coherent-incoherent or displacement-squeezing components in quantum batteries without changing total ergotropy.