This is the final version. Available on open access from AIP Publishing via the DOI in this recordThe dynamical convergence of a system to the thermal distribution, or Gibbs state, is a standard assumption across all of the physical sciences. The Gibbs state is determined just by temperature and the system’s energies alone. But at decreasing system sizes, i.e. for nanoscale and quantum systems, the interaction with their environments is not negligible. The question then arises: Is the system’s steady state still the Gibbs state? And if not, how may the steady state depend on the interaction details? Here we provide an overview of recent progress on answering these questions. We expand on the state-of-the-art along two general avenues: First...
One of the most relevant aspects of thermodynamics is its universality. Its prescriptions are ubiqui...
We establish the foundations of a nonequilibrium theory of quantum thermodynamics for noninteracting...
Funding: Y.F.C. acknowledges funding from the St Andrews Undergraduate Research Assistant Scheme, th...
The dynamical convergence of a system to the thermal distribution, or Gibbs state, is a standard ass...
The dynamical convergence of a system to the thermal distribution, or Gibbs state, is a standard ass...
Understanding better the dynamics and steady states of systems strongly coupled to thermal baths is ...
Understanding better the dynamics and steady states of systems strongly coupled to thermal baths is ...
We develop an exact quantum thermodynamic description for a noninteracting nanoscale steady state th...
The Gibbs state is widely taken to be the equilibrium state of a system in contact with an environme...
This is the final version. Available from the American Physical Society via the DOI in this recordTh...
The relationship between thermodynamics and statistical physics is valid in the thermodynamic limit—...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...
We introduce a numerical method to determine the Hamiltonian of Mean Force (HMF) Gibbs state for a q...
One of the most relevant aspects of thermodynamics is its universality. Its prescriptions are ubiqu...
peer reviewedWe establish the foundations of a nonequilibrium theory of quantum thermodynamics for n...
One of the most relevant aspects of thermodynamics is its universality. Its prescriptions are ubiqui...
We establish the foundations of a nonequilibrium theory of quantum thermodynamics for noninteracting...
Funding: Y.F.C. acknowledges funding from the St Andrews Undergraduate Research Assistant Scheme, th...
The dynamical convergence of a system to the thermal distribution, or Gibbs state, is a standard ass...
The dynamical convergence of a system to the thermal distribution, or Gibbs state, is a standard ass...
Understanding better the dynamics and steady states of systems strongly coupled to thermal baths is ...
Understanding better the dynamics and steady states of systems strongly coupled to thermal baths is ...
We develop an exact quantum thermodynamic description for a noninteracting nanoscale steady state th...
The Gibbs state is widely taken to be the equilibrium state of a system in contact with an environme...
This is the final version. Available from the American Physical Society via the DOI in this recordTh...
The relationship between thermodynamics and statistical physics is valid in the thermodynamic limit—...
In this work, we show how Gibbs or thermal states appear dynamically in closed quantum many-body sys...
We introduce a numerical method to determine the Hamiltonian of Mean Force (HMF) Gibbs state for a q...
One of the most relevant aspects of thermodynamics is its universality. Its prescriptions are ubiqu...
peer reviewedWe establish the foundations of a nonequilibrium theory of quantum thermodynamics for n...
One of the most relevant aspects of thermodynamics is its universality. Its prescriptions are ubiqui...
We establish the foundations of a nonequilibrium theory of quantum thermodynamics for noninteracting...
Funding: Y.F.C. acknowledges funding from the St Andrews Undergraduate Research Assistant Scheme, th...