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Quantum Thermodynamics
Maxwell's demons in multipartite quantum correlated systems
arXiv
Authors: Helena C. Braga, Clodoaldo C. Rulli, Thiago R. de Oliveira, Marcelo S. Sarandy
Year
2014
Paper ID
8128
Status
Preprint
Abstract Read
~2 min
Abstract Words
151
Citations
N/A
Abstract
We investigate the extraction of thermodynamic work by a Maxwell's demon in a multipartite quantum correlated system. We begin by adopting the standard model of a Maxwell's demon as a Turing machine, either in a classical or quantum setup depending on its ability of implementing classical or quantum conditional dynamics, respectively. Then, for an n-partite system A1, A2, ..., An, we introduce a protocol of work extraction that bounds the advantage of the quantum demon over its classical counterpart through the amount of multipartite quantum correlation present in the system, as measured by a thermal version of the global quantum discord. This result is illustrated for an arbitrary n-partite pure state of qubits with Schmidt decomposition, where it is shown that the thermal global quantum discord exactly quantifies the quantum advantage. Moreover, we also consider the work extraction via mixed multipartite states, where examples of tight upper bounds can be obtained.
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- This paper contributes to the Quantum Thermodynamics research area in the Quantum Articles archive.
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- We investigate the extraction of thermodynamic work by a Maxwell's demon in a multipartite quantum correlated system.
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