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Beating Carnot efficiency with periodically driven chiral conductors
Sungguen Ryu1, Rosa López2, Llorenç Serra2
1Instituto de Física Interdisciplinar y Sistemas Complejos IFISC (CSIC-UIB), E-07122, Palma, Spain. sungguen@ifisc.uib-csic.es.
Quantum microengines can surpass the Carnot limit, defying classical thermodynamics. This research shows a quantum chiral conductor can achieve higher efficiencies by using AC voltage, preserving the second law of thermodynamics.
Area of Science:
- Quantum thermodynamics
- Mesoscopic physics
- Condensed matter physics
Background:
- Classical thermodynamics dictates that ideal thermal machines are bound by the Carnot efficiency limit.
- The validity of this limit for microengines operating far from thermodynamic equilibrium remains an open question.
- Recent advancements focus on small conductors to explore the fundamental limits of thermodynamic engines.
Purpose of the Study:
- To investigate whether microengines operating far from equilibrium can exceed the Carnot efficiency limit.
- To analyze the thermodynamic performance of a quantum chiral conductor driven by AC voltage.
- To determine if the second law of thermodynamics is preserved under these conditions.
Main Methods:
- Theoretical analysis of a quantum chiral conductor subjected to an AC voltage.
- Investigation of photoassisted excitation processes and their role in entropy production.
- Examination of work extraction from temperature baths and its implications for thermodynamic laws.
Main Results:
- Demonstration that a quantum chiral conductor can achieve efficiencies significantly exceeding the Carnot bound.
- Observation of work extraction from temperature baths, seemingly violating the Kelvin-Planck statement.
- Confirmation that entropy production remains positive, preserving the second law of thermodynamics with a proper definition.
Conclusions:
- The study highlights that efficiencies beyond the Carnot limit are achievable in specific quantum systems.
- Key factors enabling超-Carnot efficiencies include irreversible entropy production via AC field-induced excitations and chirality-induced absence of power injection.
- These findings offer crucial insights into the fundamental limits of thermodynamic engines at the microscale.
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