dc.contributor.author
Gallego, R.
dc.contributor.author
Eisert, J.
dc.contributor.author
Wilming, H.
dc.date.accessioned
2018-06-08T10:45:05Z
dc.date.available
2016-12-19T11:23:43.395Z
dc.identifier.uri
https://refubium.fu-berlin.de/handle/fub188/21008
dc.identifier.uri
http://dx.doi.org/10.17169/refubium-24305
dc.description.abstract
In recent years we have witnessed a concentrated effort to make sense of
thermodynamics for small-scale systems. One of the main difficulties is to
capture a suitable notion of work that models realistically the purpose of
quantum machines, in an analogous way to the role played, for macroscopic
machines, by the energy stored in the idealisation of a lifted weight. Despite
several attempts to resolve this issue by putting forward specific models,
these are far from realistically capturing the transitions that a quantum
machine is expected to perform. In this work, we adopt a novel strategy by
considering arbitrary kinds of systems that one can attach to a quantum
thermal machine and defining work quantifiers. These are functions that
measure the value of a transition and generalise the concept of work beyond
those models familiar from phenomenological thermodynamics. We do so by
imposing simple operational axioms that any reasonable work quantifier must
fulfil and by deriving from them stringent mathematical condition with a clear
physical interpretation. Our approach allows us to derive much of the
structure of the theory of thermodynamics without taking the definition of
work as a primitive. We can derive, for any work quantifier, a quantitative
second law in the sense of bounding the work that can be performed using some
non-equilibrium resource by the work that is needed to create it. We also
discuss in detail the role of reversibility and correlations in connection
with the second law. Furthermore, we recover the usual identification of work
with energy in degrees of freedom with vanishing entropy as a particular case
of our formalism. Our mathematical results can be formulated abstractly and
are general enough to carry over to other resource theories than quantum
thermodynamics.
en
dc.rights.uri
http://creativecommons.org/licenses/by/3.0/
dc.subject.ddc
500 Naturwissenschaften und Mathematik::510 Mathematik
dc.title
Thermodynamic work from operational principles
dc.type
Wissenschaftlicher Artikel
dcterms.bibliographicCitation
New Journal of Physics. - 18 (2016), 10, Artikel Nr. 03017
dcterms.bibliographicCitation.doi
10.1088/1367-2630/18/10/103017
dcterms.bibliographicCitation.url
http://iopscience.iop.org/article/10.1088/1367-2630/18/10/103017/meta;jsessionid=ADAC032E116602ADC1605583E1F0F1AD.c3.iopscience.cld.iop.org
refubium.affiliation
Mathematik und Informatik
de
refubium.mycore.fudocsId
FUDOCS_document_000000026042
refubium.note.author
Der Artikel wurde in einer reinen Open-Access-Zeitschrift publiziert.
refubium.resourceType.isindependentpub
no
refubium.mycore.derivateId
FUDOCS_derivate_000000007441
dcterms.accessRights.openaire
open access