Artículos de revistas
Using a quantum work meter to test non-equilibrium fluctuation theorems
Fecha
2017-12Registro en:
Cerisola, Federico; Margalit, Yair; MacHluf, Shimon; Roncaglia, Augusto Jose; Paz, Juan Pablo; et al.; Using a quantum work meter to test non-equilibrium fluctuation theorems; Nature; Nature Communications; 8; 1241; 12-2017; 1-6
2041-1723
2041-1723
CONICET Digital
CONICET
Autor
Cerisola, Federico
Margalit, Yair
MacHluf, Shimon
Roncaglia, Augusto Jose
Paz, Juan Pablo
Folman, Ron
Resumen
Work is an essential concept in classical thermodynamics, and in the quantum regime, where the notion of a trajectory is not available, its definition is not trivial. For driven (but otherwise isolated) quantum systems, work can be defined as a random variable, associated with the change in the internal energy. The probability for the different values of work captures essential information describing the behaviour of the system, both in and out of thermal equilibrium. In fact, the work probability distribution is at the core of "fluctuation theorems" in quantum thermodynamics. Here we present the design and implementation of a quantum work meter operating on an ensemble of cold atoms, which are controlled by an atom chip. Our device not only directly measures work but also directly samples its probability distribution. We demonstrate the operation of this new tool and use it to verify the validity of the quantum Jarzynksi identity.