Beating Carnot efficiency with periodically driven chiral conductors
arXiv:2104.11149 · doi:10.1038/s41467-022-30039-7
Abstract
Classically, the power generated by an ideal thermal machine cannot be larger than the Carnot limit. This profound result is rooted in the second law of thermodynamics. A hot question is whether this bound is still valid for microengines operating far from equilibrium. Here, we demonstrate that a quantum chiral conductor driven by AC voltage can indeed work with efficiencies much larger than the Carnot bound. The system also extracts work from common temperature baths, violating Kelvin-Planck statement. Nonetheless, with the proper definition, entropy production is always positive and the second law is preserved. The crucial ingredients to obtain efficiencies beyond the Carnot limit are: i) irreversible entropy production by the photoassisted excitation processes due to the AC field and ii) absence of power injection thanks to chirality. Our results are relevant in view of recent developments that use small conductors to test the fundamental limits of thermodynamic engines.
7 pages (including references)+ 7 pages (supplemental material); More references are included
References in corpus (7)
- Driven quantum transport on the nanoscale
- Single ion heat engine with maximum efficiency at maximum power
- Optimal energy quanta to current conversion
- Minimal excitation states of electrons in one-dimensional wires
- Nonequilibrium fluctuations in quantum heat engines: Theory, example, and possible solid state experiments
- Energy and power fluctuations in ac-driven coherent conductors
- Minimal-excitation single-particle emitters: A comparison of charge and energy transport properties
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