Defines Clifford ergotropy with universal upper bounds that decrease with magic (via infinite-order filtered stabilizer Rényi entropy), shows results for 1-2 qubit systems including a control landscape transition, and derives a Clifford-restricted second law for typical many-body states.
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An open quantum system with bosonic modes and reservoirs implements parallel stochastic matrix-vector multiplications whose computation time is independent of input dimension, with results given by stationary energy flows and a direct mapping to electrical crossbar circuits.
Multi-parameter sudden-quench Otto cycles outperform single-parameter versions in net work, efficiency, and refrigerator coefficient of performance for a 1D Bose gas and Ising model.
Multilayer graphene quantum Stirling engines reach Carnot efficiency at low magnetic fields and moderate temperatures, with AB-stacked bilayer showing the broadest viable parameter range.
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Clifford Ergotropy
Defines Clifford ergotropy with universal upper bounds that decrease with magic (via infinite-order filtered stabilizer Rényi entropy), shows results for 1-2 qubit systems including a control landscape transition, and derives a Clifford-restricted second law for typical many-body states.
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Thermodynamic coprocessor for linear operations with input-size-independent calculation time based on open quantum system
An open quantum system with bosonic modes and reservoirs implements parallel stochastic matrix-vector multiplications whose computation time is independent of input dimension, with results given by stationary energy flows and a direct mapping to electrical crossbar circuits.
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Enhanced performance of sudden-quench quantum Otto cycles via multi-parameter control
Multi-parameter sudden-quench Otto cycles outperform single-parameter versions in net work, efficiency, and refrigerator coefficient of performance for a 1D Bose gas and Ising model.
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Reaching maximum efficiency in quantum Stirling engines using multilayer graphene
Multilayer graphene quantum Stirling engines reach Carnot efficiency at low magnetic fields and moderate temperatures, with AB-stacked bilayer showing the broadest viable parameter range.