Microcanonical and resource-theoretic derivations of the thermal state of a quantum system with noncommuting charges

Open access
Date
2016Type
- Journal Article
Citations
Cited 69 times in
Web of Science
Cited 75 times in
Scopus
ETH Bibliography
yes
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Abstract
The grand canonical ensemble lies at the core of quantum and classical statistical mechanics. A small system thermalizes to this ensemble while exchanging heat and particles with a bath. A quantum system may exchange quantities represented by operators that fail to commute. Whether such a system thermalizes and what form the thermal state has are questions about truly quantum thermodynamics. Here we investigate this thermal state from three perspectives. First, we introduce an approximate microcanonical ensemble. If this ensemble characterizes the system-and-bath composite, tracing out the bath yields the system’s thermal state. This state is expected to be the equilibrium point, we argue, of typical dynamics. Finally, we define a resource-theory model for thermodynamic exchanges of noncommuting observables. Complete passivity—the inability to extract work from equilibrium states—implies the thermal state’s form, too. Our work opens new avenues into equilibrium in the presence of quantum noncommutation. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000118384Publication status
publishedExternal links
Journal / series
Nature CommunicationsVolume
Pages / Article No.
Publisher
Nature Publishing GroupOrganisational unit
03781 - Renner, Renato / Renner, Renato
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Show all metadata
Citations
Cited 69 times in
Web of Science
Cited 75 times in
Scopus
ETH Bibliography
yes
Altmetrics