Despite the increasing interest, the research field which studies the concepts of work and heat at the quantum level has suffered from two main drawbacks: first, the difficulty to properly define and measure the work, heat, and internal energy variation in a quantum system and, second, the lack of experiments. Here, we report a full characterization of the dissipated heat, work, and internal energy variation in a two-level quantum system interacting with an engineered environment. We use the IBMQ quantum computer to implement the driven system's dynamics in a dissipative environment. The experimental data allow us to construct quasiprobability distribution functions from which we recover the correct averages of work, heat, and internal ener...
Assigning the variations of internal energy into heat or work contributions is a challenging task du...
VK: Low Temperature LaboratoryWe study stochastic energetic exchanges in quantum heat engines. Due t...
9 pages, 3 figures. New improved version following multiple discussions. Comments are welcomeOrigina...
We propose an approach to define and measure the statistics of work, internal energy and dissipated ...
We apply the quantum jump approach to address the statistics of work in a driven two-level system co...
Technological advances over the past few decades have made it possible to address quantum systems do...
VK: Low Temperature LaboratoryWe discuss work performed on a quantum two-level system coupled to mul...
We propose a calorimetric measurement of work in a quantum system. As a physical realization, we con...
We consider continuously monitored quantum systems and introduce definitions of work and heat along ...
A calorimetric measurement has recently been proposed as a promising technique to measure thermodyna...
Work is one of the cornerstones of classical thermodynamics. However, a direct transfer of this conc...
The central purpose of this thesis is to study the familiar processes of quantum information theory ...
Fluctuations of thermodynamic observables, such as heat and work, contain relevant information on th...
At nonzero temperature classical systems exhibit statistical fluctuations of thermodynamic quantitie...
We consider continuously monitored quantum systems and introduce definitions of work and heat along...
Assigning the variations of internal energy into heat or work contributions is a challenging task du...
VK: Low Temperature LaboratoryWe study stochastic energetic exchanges in quantum heat engines. Due t...
9 pages, 3 figures. New improved version following multiple discussions. Comments are welcomeOrigina...
We propose an approach to define and measure the statistics of work, internal energy and dissipated ...
We apply the quantum jump approach to address the statistics of work in a driven two-level system co...
Technological advances over the past few decades have made it possible to address quantum systems do...
VK: Low Temperature LaboratoryWe discuss work performed on a quantum two-level system coupled to mul...
We propose a calorimetric measurement of work in a quantum system. As a physical realization, we con...
We consider continuously monitored quantum systems and introduce definitions of work and heat along ...
A calorimetric measurement has recently been proposed as a promising technique to measure thermodyna...
Work is one of the cornerstones of classical thermodynamics. However, a direct transfer of this conc...
The central purpose of this thesis is to study the familiar processes of quantum information theory ...
Fluctuations of thermodynamic observables, such as heat and work, contain relevant information on th...
At nonzero temperature classical systems exhibit statistical fluctuations of thermodynamic quantitie...
We consider continuously monitored quantum systems and introduce definitions of work and heat along...
Assigning the variations of internal energy into heat or work contributions is a challenging task du...
VK: Low Temperature LaboratoryWe study stochastic energetic exchanges in quantum heat engines. Due t...
9 pages, 3 figures. New improved version following multiple discussions. Comments are welcomeOrigina...