We investigate the performance of a quantum thermal machine operating in finite time based on shortcut-to-adiabaticity techniques. We compute efficiency and power for a paradigmatic harmonic quantum Otto engine by taking the energetic cost of the shortcut driving explicitly into account. We demonstrate that shortcut-to-adiabaticity machines outperform conventional ones for fast cycles. We further derive generic upper bounds on both quantities, valid for any heat engine cycle, using the notion of quantum speed limit for driven systems. We establish that these quantum bounds are tighter than those stemming from the second law of thermodynamics
Modern technologies could soon make it possible to investigate the operation cycles of quantum heat ...
We consider an isolated autonomous quantum machine, where an explicit quantum clock is responsible f...
The performance of quantum heat engines is generally based on the analysis of a single cycle. We cha...
The finite-time operation of a quantum heat engine that uses a single particle as a working medium g...
The quantum Otto cycle serves as a bridge between the macroscopic world of heat engines and the quan...
The unavoidable irreversible losses of power in a heat engine are found to be of quantum origin. Fol...
The difference between quantum isoenergetic process and quantum isothermal process comes from the vi...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
The concept of thermal machines has evolved from the canonical steam engine to the recently proposed...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
We study how to achieve the ultimate power in the simplest, yet non-trivial, model of a thermal mach...
We study how to achieve the ultimate power in the simplest, yet non-trivial, model of a thermal mach...
Modern technologies could soon make it possible to investigate the operation cycles of quantum heat ...
We consider an isolated autonomous quantum machine, where an explicit quantum clock is responsible f...
The performance of quantum heat engines is generally based on the analysis of a single cycle. We cha...
The finite-time operation of a quantum heat engine that uses a single particle as a working medium g...
The quantum Otto cycle serves as a bridge between the macroscopic world of heat engines and the quan...
The unavoidable irreversible losses of power in a heat engine are found to be of quantum origin. Fol...
The difference between quantum isoenergetic process and quantum isothermal process comes from the vi...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
The concept of thermal machines has evolved from the canonical steam engine to the recently proposed...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
International audienceThe study of quantum thermodynamics is key to the development of quantum therm...
We study how to achieve the ultimate power in the simplest, yet non-trivial, model of a thermal mach...
We study how to achieve the ultimate power in the simplest, yet non-trivial, model of a thermal mach...
Modern technologies could soon make it possible to investigate the operation cycles of quantum heat ...
We consider an isolated autonomous quantum machine, where an explicit quantum clock is responsible f...
The performance of quantum heat engines is generally based on the analysis of a single cycle. We cha...