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Thermal equilibrium of two quantum Brownian particles

Source: Phys. Rev. A 81, 012117 (2010); doi:10.1103/PhysRevA.81.012117

Published 26 January 2010

PACS
  • 03.65.Yz
    Decoherence; open systems; quantum statistical methods
  • 05.40.Jc
    Brownian motion
  • 03.67.Bg
    Entanglement production and manipulation (quantum information)
  • YEAR: 2010
PUBLICATION DATA
Publisher:
AIP is a member of CrossRef APS
D. M. Valente and A. O. Caldeira
Departamento de Física da Matéria Condensada, Instituto de Física Gleb Wataghin, Universidade Estadual de Campinas, CEP 13083-970, Campinas-SP, Brazil
The influence of the environment in the thermal equilibrium properties of a bipartite continuous variable quantum system is studied. The problem is treated within a system-plus-reservoir approach. The considered model reproduces the Brownian motion when the two particles are isolated and induces an effective interaction between them, depending on the choice of the spectral function of the bath. The coupling between the system and the environment guarantees the translational invariance of the system in the absence of an external potential. The entanglement between the particles is measured by the logarithmic negativity, which is shown to monotonically decrease with the increase of the temperature. A range of finite temperatures is found in which entanglement is still induced by the reservoir. ©2010 The American Physical Society
History: Received 13 November 2009; published 26 January 2010
Permalink: http://link.aps.org/abstract/PRA/v81/e012117
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