The resource theory of thermal operations, an established model for small-scale thermodynamics, provides an extension of equilibrium thermodynamics to nonequilibrium situations. On a lattice of any dimension with any translation-invariant local Hamiltonian, we identify a large set of translation-invariant states that can be reversibly converted to and from the thermal state with thermal operations and a small amount of coherence. These are the spatially ergodic states, i.e., states that have sharp statistics for any translation-invariant observable, and mixtures of such states with the same thermodynamic potential. As an intermediate result, we show for a general state that if the gap between the min- and the max-relative entropies to the t...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
We consider an isolated, macroscopic quantum system. Let H be a micro-canonical "energy shell," i.e....
The resource theory of thermal operations, an established model for small-scale thermodynamics, prov...
The resource theory of thermal operations, an established model for small-scale thermodynamics, prov...
The resource theory of thermal operations, an established model for small-scale thermodynamics, prov...
For quantum spin systems in any spatial dimension with a local, translation-invariant Hamiltonian, w...
For quantum spin systems in any spatial dimension with a local, translation-invariant Hamiltonian, w...
Thermodynamics imposes restrictions on what state transformations are possible. In the macroscopic l...
The resource theory approach is a recently developed framework used in the study of thermodynamics f...
Thermodynamics imposes restrictions on what state transformations are possible. In the macroscopic l...
Thermodynamics imposes restrictions on what state transformations are possible. In the macroscopic l...
The ideas of thermodynamics have proved fruitful in the setting of quantum information theory, in pa...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
We extend the tools of quantum resource theories to scenarios in which multiple quantities (or resou...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
We consider an isolated, macroscopic quantum system. Let H be a micro-canonical "energy shell," i.e....
The resource theory of thermal operations, an established model for small-scale thermodynamics, prov...
The resource theory of thermal operations, an established model for small-scale thermodynamics, prov...
The resource theory of thermal operations, an established model for small-scale thermodynamics, prov...
For quantum spin systems in any spatial dimension with a local, translation-invariant Hamiltonian, w...
For quantum spin systems in any spatial dimension with a local, translation-invariant Hamiltonian, w...
Thermodynamics imposes restrictions on what state transformations are possible. In the macroscopic l...
The resource theory approach is a recently developed framework used in the study of thermodynamics f...
Thermodynamics imposes restrictions on what state transformations are possible. In the macroscopic l...
Thermodynamics imposes restrictions on what state transformations are possible. In the macroscopic l...
The ideas of thermodynamics have proved fruitful in the setting of quantum information theory, in pa...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
We extend the tools of quantum resource theories to scenarios in which multiple quantities (or resou...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A smal...
We consider an isolated, macroscopic quantum system. Let H be a micro-canonical "energy shell," i.e....