Local master equations bypass the secular approximation
arXiv:2009.11324 · doi:10.22331/q-2021-05-01-451
Abstract
Master equations are a vital tool to model heat flow through nanoscale thermodynamic systems. Most practical devices are made up of interacting sub-system, and are often modelled using either local master equations (LMEs) or global master equations (GMEs). While the limiting cases in which either the LME or the GME breaks down are well understood, there exists a 'grey area' in which both equations capture steady-state heat currents reliably, but predict very different transient heat flows. In such cases, which one should we trust? Here, we show that, when it comes to dynamics, the local approach can be more reliable than the global one for weakly interacting open quantum systems. This is due to the fact that the secular approximation, which underpins the GME, can destroy key dynamical features. To illustrate this, we consider a minimal transport setup and show that its LME displays exceptional points (EPs). These singularities have been observed in a superconducting-circuit realisation of the model [1]. However, in stark contrast to experimental evidence, no EPs appear within the global approach. We then show that the EPs are a feature built into the Redfield equation, which is more accurate than the LME and the GME. Finally, we show that the local approach emerges as the weak-interaction limit of the Redfield equation, and that it entirely avoids the secular approximation.
24 pages, 3 figures
References in corpus (15)
- Markovian master equations for quantum thermal machines: local vs global approach
- Markovian Master Equations: A Critical Study
- Modeling heat transport through completely positive maps
- Testing the validity of the local and global GKLS master equations on an exactly solvable model
- Performance bound for quantum absorption refrigerators
- Preservation of Positivity by Dynamical Coarse-Graining
- Bloch-Redfield equations for modeling light-harvesting complexes
- The Rotating-Wave Approximation: Consistency and Applicability from an Open Quantum System Analysis
- Open Quantum System Dynamics: recovering positivity of the Redfield equation via Partial-Secular Approximation
- Quantum thermodynamically consistent local master equations
- Microscopic theory of a non-equilibrium open bosonic chain
- Thermodynamics of Optical Bloch Equations
- Laser-induced cooling of broadband heat reservoirs
- Going beyond Local and Global approaches for localized thermal dissipation
- Bath assisted transport in a three-site spin chain: global {\sl vs} local approach
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