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Quantum synchronization in nanoscale heat engines
Journal article   Peer reviewed

Quantum synchronization in nanoscale heat engines

Noufal Jaseem, Michal Hajdusek, Vlatko Vedral, Rosario Fazio, Leong-Chuan Kwek, Sai Vinjanampathy and Noufal Jaseem Poovakkattil
Physical review. E, Vol.101(2), p.020201
01/02/2020
PMID: 32168700

Abstract

Physical Sciences Physics Physics, Fluids & Plasmas Physics, Mathematical Science & Technology
Owing to the ubiquity of synchronization in the classical world, it is interesting to study its behavior in quantum systems. Though quantum synchronization has been investigated in many systems, a clear connection to quantum technology applications is lacking. We bridge this gap and show that nanoscale heat engines are a natural platform to study quantum synchronization and always possess a stable limit cycle. Furthermore, we demonstrate an intimate relationship between the power of a coherently driven heat engine and its phase-locking properties by proving that synchronization places an upper bound on the achievable steady-state power of the engine. We also demonstrate that such an engine exhibits finite steady-state power if and only if its synchronization measure is nonzero. Finally, we show that the efficiency of the engine sets a point in terms of the bath temperatures where synchronization vanishes. We link the physical phenomenon of synchronization with the emerging field of quantum thermodynamics by establishing quantum synchronization as a mechanism of stable phase coherence.
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https://doi.org/10.1103/PhysRevE.101.020201View
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