© 2017 American Physical Society. We identify a universal indicator for the impact of coherence on periodically driven quantum devices by dividing their power output into a classical contribution and one stemming solely from superpositions. Specializing to Lindblad dynamics and small driving amplitudes, we derive general upper bounds on both the coherent and the total power of cyclic heat engines. These constraints imply that, for sufficiently slow driving, coherence inevitably leads to power losses in the linear-response regime. We illustrate our theory by working out the experimentally relevant example of a single-qubit engine
Owing to the ubiquity of synchronization in the classical world, it is interesting to study its beha...
Periodically driven coherent conductors provide a universal platform for the development of quantum ...
Recent developments in nanoscale experimental techniques made it possible to utilize single molecule...
We identify a universal indicator for the impact of coherence on periodically driven quantum devices...
We develop a general framework to describe the thermodynamics of microscopic heat engines driven by ...
Quantum coherence can affect the thermodynamics of small quantum systems. Coherences have been shown...
We consider a recently proposed four-level quantum heat engine (QHE) model to analyze the role of qu...
Modern technologies could soon make it possible to investigate the operation cycles of quantum heat ...
Thermodynamic uncertainty relations express a trade-off between precision, defined as the noise-to-s...
Nanoscale heat engines are subject to large fluctuations which affect their precision. The thermodyn...
We show that the operation and the output power of a quantum heat engine that converts incoherent th...
Quantum coherence has been demonstrated in various systems including organic solar cells and solid s...
We show that quantum coherence can enhance the performance of a continuous quantum heat engine in th...
The effect of spontaneously generated coherence (SGC) on the quantum heat engine (QHE) con...
The unavoidable irreversible losses of power in a heat engine are found to be of quantum origin. Fol...
Owing to the ubiquity of synchronization in the classical world, it is interesting to study its beha...
Periodically driven coherent conductors provide a universal platform for the development of quantum ...
Recent developments in nanoscale experimental techniques made it possible to utilize single molecule...
We identify a universal indicator for the impact of coherence on periodically driven quantum devices...
We develop a general framework to describe the thermodynamics of microscopic heat engines driven by ...
Quantum coherence can affect the thermodynamics of small quantum systems. Coherences have been shown...
We consider a recently proposed four-level quantum heat engine (QHE) model to analyze the role of qu...
Modern technologies could soon make it possible to investigate the operation cycles of quantum heat ...
Thermodynamic uncertainty relations express a trade-off between precision, defined as the noise-to-s...
Nanoscale heat engines are subject to large fluctuations which affect their precision. The thermodyn...
We show that the operation and the output power of a quantum heat engine that converts incoherent th...
Quantum coherence has been demonstrated in various systems including organic solar cells and solid s...
We show that quantum coherence can enhance the performance of a continuous quantum heat engine in th...
The effect of spontaneously generated coherence (SGC) on the quantum heat engine (QHE) con...
The unavoidable irreversible losses of power in a heat engine are found to be of quantum origin. Fol...
Owing to the ubiquity of synchronization in the classical world, it is interesting to study its beha...
Periodically driven coherent conductors provide a universal platform for the development of quantum ...
Recent developments in nanoscale experimental techniques made it possible to utilize single molecule...