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The thermodynamic cost of driving quantum systems by their boundaries. | LitMetric

The thermodynamic cost of driving quantum systems by their boundaries.

Sci Rep

Departamento de Física, Facultad de Ciencias Físicas y Matemáticas, Universidad de Chile, Santiago Chile.

Published: October 2015

AI Article Synopsis

  • The laws of thermodynamics limit the efficiency of thermal machines, but new analogues for quantum engines are being studied, particularly those weakly and passively coupled to their environment.
  • Active and local coupling to the environment, described using a boundary-driven Lindblad equation, allows researchers to derive heat, work, and entropy production more effectively.
  • The study reveals interesting behavior in spin 1/2 chains: while an XX chain reaches thermodynamic equilibrium with a single heat bath, an XY chain does not, and the XX chain can act as a quantum engine or a refrigerator depending on its configuration and parameters, with efficiencies adhering to Carnot limits.

Article Abstract

The laws of thermodynamics put limits to the efficiencies of thermal machines. Analogues of these laws are now established for quantum engines weakly and passively coupled to the environment providing a framework to find improvements to their performance. Systems whose interaction with the environment is actively controlled do not fall in that framework. Here we consider systems actively and locally coupled to the environment, evolving with a so-called boundary-driven Lindblad equation. Starting from a unitary description of the system plus the environment we simultaneously obtain the Lindblad equation and the appropriate expressions for heat, work and entropy-production of the system extending the framework for the analysis of new, and some already proposed, quantum heat engines. We illustrate our findings in spin 1/2 chains and explain why an XX chain coupled in this way to a single heat bath relaxes to thermodynamic-equilibrium while and XY chain does not. Additionally, we show that an XX chain coupled to a left and a right heat baths behaves as a quantum engine, a heater or refrigerator depending on the parameters, with efficiencies bounded by Carnot efficiencies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4597202PMC
http://dx.doi.org/10.1038/srep14873DOI Listing

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