We use a near quantum limited detector to experimentally track individual quantum state trajectories of a driven qubit formed by the hybridization of a waveguide cavity and a transmon circuit. For each measured quantum coherent trajectory, we separately identify energy changes of the qubit as heat and work, and verify the first law of thermodynamics for an open quantum system. We further establish the consistency of these results by comparison with the master equation approach and the two-projective-measurement scheme, both for open and closed dynamics, with the help of a quantum feedback loop that compensates for the exchanged heat and effectively isolates the qubit
We propose a feasible experimental scheme to direct measure heat and work in cold atomic setups. The...
A central feature of quantum mechanics is that a measurement result is intrinsically probabilistic. ...
| openaire: EC/H2020/742559/EU//SQHHeat flow management at the nanoscale is of great importance for ...
We consider continuously monitored quantum systems and introduce definitions of work and heat along ...
We consider continuously monitored quantum systems and introduce definitions of work and heat along...
Technological advances over the past few decades have made it possible to address quantum systems do...
We present an overview of recent advances in the study of energy dynamics and mechanisms for energy ...
Despite the increasing interest, the research field which studies the concepts of work and heat at t...
© 2016 American Physical Society. A calorimetric measurement has recently been proposed as a promisi...
We observe the continuous emission of photons into a waveguide from a superconducting qubit without ...
Work is one of the cornerstones of classical thermodynamics. However, a direct transfer of this conc...
We consider open quantum systems weakly coupled to thermal reservoirs and subjected to quantum feedb...
A theory of feedback-controlled heat transport in quantum systems is presented. It is based on model...
This is the final version of the article. Available from American Physical Society via the DOI in th...
We investigated coupled-qubit-based thermal machines powered by quantum measurements and feedback. W...
We propose a feasible experimental scheme to direct measure heat and work in cold atomic setups. The...
A central feature of quantum mechanics is that a measurement result is intrinsically probabilistic. ...
| openaire: EC/H2020/742559/EU//SQHHeat flow management at the nanoscale is of great importance for ...
We consider continuously monitored quantum systems and introduce definitions of work and heat along ...
We consider continuously monitored quantum systems and introduce definitions of work and heat along...
Technological advances over the past few decades have made it possible to address quantum systems do...
We present an overview of recent advances in the study of energy dynamics and mechanisms for energy ...
Despite the increasing interest, the research field which studies the concepts of work and heat at t...
© 2016 American Physical Society. A calorimetric measurement has recently been proposed as a promisi...
We observe the continuous emission of photons into a waveguide from a superconducting qubit without ...
Work is one of the cornerstones of classical thermodynamics. However, a direct transfer of this conc...
We consider open quantum systems weakly coupled to thermal reservoirs and subjected to quantum feedb...
A theory of feedback-controlled heat transport in quantum systems is presented. It is based on model...
This is the final version of the article. Available from American Physical Society via the DOI in th...
We investigated coupled-qubit-based thermal machines powered by quantum measurements and feedback. W...
We propose a feasible experimental scheme to direct measure heat and work in cold atomic setups. The...
A central feature of quantum mechanics is that a measurement result is intrinsically probabilistic. ...
| openaire: EC/H2020/742559/EU//SQHHeat flow management at the nanoscale is of great importance for ...