The Carnot cycle imposes a fundamental upper limit to the efficiency of a macroscopic motor operating between two thermal baths. However, this bound needs to be reinterpreted at microscopic scales, where molecular bio-motors and some artificial micro-engines operate. As described by stochastic thermodynamics, energy transfers in microscopic systems are random and thermal fluctuations induce transient decreases of entropy, allowing for possible violations of the Carnot limit. Here we report an experimental realization of a Carnot engine with a single optically trapped Brownian particle as the working substance. We present an exhaustive study of the energetics of the engine and analyse the fluctuations of the finite-time efficiency, showing t...
A method of calculating velocity, efficiency as well as coefficient of performance of the refrigerat...
Since its inception about two centuries ago thermodynamics has sparkled continuous interest and fund...
Stochastic heat engines can be built using colloidal particles trapped using optical tweezers. Here ...
The Carnot cycle imposes a fundamental upper limit to the efficiency of a macroscopic motor operatin...
We review a series of experimental studies of the thermodynamics of nonequilibrium processes at the ...
The widely debated feasibility of thermodynamic machines achieving Carnot efficiency at finite power...
The efficient conversion of thermal energy to mechanical work by a heat engine is an ongoing technol...
Artificial microscale heat engines are prototypical models to explore the mechanisms of energy trans...
Achieving the Carnot efficiency at finite power is a challenging problem in heat engines due to the ...
We introduce a simple discrete model of a molecular heat engine. The engine's dynamics is strongly i...
We study a class of cyclic Brownian heat engines in the framework of finite-time thermodynamics. For...
We study the possibility of achieving the Carnot efficiency in a finite-power underdamped Brownian C...
We explore the effect of thermal inhomogeneity on the performance of a Brownian heat engine by consi...
The area of quantum thermodynamics is a relatively new field and there are great efforts in research...
We study the energetics of a thermal motor driven by temperature differences, which consists of a Br...
A method of calculating velocity, efficiency as well as coefficient of performance of the refrigerat...
Since its inception about two centuries ago thermodynamics has sparkled continuous interest and fund...
Stochastic heat engines can be built using colloidal particles trapped using optical tweezers. Here ...
The Carnot cycle imposes a fundamental upper limit to the efficiency of a macroscopic motor operatin...
We review a series of experimental studies of the thermodynamics of nonequilibrium processes at the ...
The widely debated feasibility of thermodynamic machines achieving Carnot efficiency at finite power...
The efficient conversion of thermal energy to mechanical work by a heat engine is an ongoing technol...
Artificial microscale heat engines are prototypical models to explore the mechanisms of energy trans...
Achieving the Carnot efficiency at finite power is a challenging problem in heat engines due to the ...
We introduce a simple discrete model of a molecular heat engine. The engine's dynamics is strongly i...
We study a class of cyclic Brownian heat engines in the framework of finite-time thermodynamics. For...
We study the possibility of achieving the Carnot efficiency in a finite-power underdamped Brownian C...
We explore the effect of thermal inhomogeneity on the performance of a Brownian heat engine by consi...
The area of quantum thermodynamics is a relatively new field and there are great efforts in research...
We study the energetics of a thermal motor driven by temperature differences, which consists of a Br...
A method of calculating velocity, efficiency as well as coefficient of performance of the refrigerat...
Since its inception about two centuries ago thermodynamics has sparkled continuous interest and fund...
Stochastic heat engines can be built using colloidal particles trapped using optical tweezers. Here ...