4.6 Article

Continuous thermomajorization and a complete set of laws for Markovian thermal processes

期刊

PHYSICAL REVIEW A
卷 106, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.106.012426

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资金

  1. Foundation for Polish Science through TEAM-NET project [POIR.04.04.00-00-17C1/18-00]
  2. European Union's Marie Sklodowska-Curie individual Fellowships (H2020-MSCA-IF-2017) [GA794842]
  3. Spanish MINECO [SEV-2015-0522, QIBEQI FIS2016-80773-P]
  4. Fundacio Cellex [SGR 875]
  5. Generalitat de Catalunya [SGR 875]
  6. grant EQEC [682726]

向作者/读者索取更多资源

This article presents a framework that overcomes the limitations of current dynamical and information theory approaches in quantum thermodynamics. The framework provides a complete set of generalized entropy production inequalities for non-equilibrium transformations, and can be simplified to a verifiable set of constraints. Importantly, the framework is constructive, returning explicit protocols for any allowed transformation.
The standard dynamical approach to quantum thermodynamics is based on Markovian master equations describing the thermalization of a system weakly coupled to a large environment, and on tools such as entropy production relations. Here we develop a framework overcoming the limitations that the current dynamical and information theory approaches encounter when applied to this setting. More precisely, we introduce the notion of continuous thermomajorization and employ it to obtain necessary and sufficient conditions for the existence of a Markovian thermal process transforming between given initial and final energy distributions of the system. These lead to a complete set of generalized entropy production inequalities including the standard one as a special case. Importantly, these conditions can be reduced to a finitely verifiable set of constraints governing nonequilibrium transformations under master equations. What is more, the framework is also constructive, i.e., it returns explicit protocols realizing any allowed transformation. These protocols use as building blocks elementary thermalizations, which we prove to be universal controls. Finally, we also present an algorithm constructing the full set of energy distributions achievable from a given initial state via Markovian thermal processes and provide a Mathematica implementation solving d = 6 on a laptop computer in minutes.

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