International audienceWhile strong system-bath coupling produces rich and interesting phenomena, applications to quantum thermal engines have been so far pointing mainly at detrimental effects. The delicate trade-off between efficiency loss due to strong coupling and power increase due to faster equilibration, while acknowledged, remained largely unexplored owing to the challenge of assessing precisely the equilibration time. Here, we overcome this obstacle by exploiting exact numerical simulations based on the hierarchical equations of motion (HEOM) formalism. We show that a quantum Otto cycle can perform better at strong (but not ultrastrong) coupling in that the product of the efficiency times the output power is maximized in this regime...
We show that a quantum Otto cycle in which the medium, an interacting ultracold gas, is driven betwe...
We study coupled quantum systems as the working media of thermodynamic machines. Under a suitable ph...
Algebraic methods for solving time dependent Hamiltonians are used to investigate the performance of...
International audienceWhile strong system-bath coupling produces rich and interesting phenomena, app...
International audienceWhile strong system-bath coupling produces rich and interesting phenomena, app...
We study a quantum heat engine at strong coupling between the system and the thermal reservoirs. Exp...
Quantum thermal machines make use of non-classical thermodynamic resources, one of which include int...
Uncovering whether strong system-bath coupling can be an advantageous operation resource for energy ...
Energy conversion of heat into work at the quantum level is modeled by quantum heat machines (QHMs) ...
Energy conversion of heat into work at the quantum level is modeled by quantum heat machines (QHMs) ...
The quantum Otto cycle serves as a bridge between the macroscopic world of heat engines and the quan...
The finite-time operation of a quantum heat engine that uses a single particle as a working medium g...
The performance of quantum heat engines is generally based on the analysis of a single cycle. We cha...
We consider a single quantum mechanical particle confined to an one-dimensional (1D) infinite square...
We study a minimal quantum Otto heat engine, where the working medium consists of an interacting few...
We show that a quantum Otto cycle in which the medium, an interacting ultracold gas, is driven betwe...
We study coupled quantum systems as the working media of thermodynamic machines. Under a suitable ph...
Algebraic methods for solving time dependent Hamiltonians are used to investigate the performance of...
International audienceWhile strong system-bath coupling produces rich and interesting phenomena, app...
International audienceWhile strong system-bath coupling produces rich and interesting phenomena, app...
We study a quantum heat engine at strong coupling between the system and the thermal reservoirs. Exp...
Quantum thermal machines make use of non-classical thermodynamic resources, one of which include int...
Uncovering whether strong system-bath coupling can be an advantageous operation resource for energy ...
Energy conversion of heat into work at the quantum level is modeled by quantum heat machines (QHMs) ...
Energy conversion of heat into work at the quantum level is modeled by quantum heat machines (QHMs) ...
The quantum Otto cycle serves as a bridge between the macroscopic world of heat engines and the quan...
The finite-time operation of a quantum heat engine that uses a single particle as a working medium g...
The performance of quantum heat engines is generally based on the analysis of a single cycle. We cha...
We consider a single quantum mechanical particle confined to an one-dimensional (1D) infinite square...
We study a minimal quantum Otto heat engine, where the working medium consists of an interacting few...
We show that a quantum Otto cycle in which the medium, an interacting ultracold gas, is driven betwe...
We study coupled quantum systems as the working media of thermodynamic machines. Under a suitable ph...
Algebraic methods for solving time dependent Hamiltonians are used to investigate the performance of...