Taming the Bloch-Redfield equation: Recovering an accurate Lindblad equation for general open quantum systems
arXiv:2402.06354 · doi:10.1103/PhysRevA.109.062225
Abstract
Master equations play a pivotal role in investigating open quantum systems. In particular, the Bloch-Redfield equation stands out due to its relation to a concrete physical environment. However, without further approximations it does not lead to a Lindblad master equation that guarantees that the density matrix stays completely positive, which has raised some concerns regarding its use. This study builds on previous efforts to transform the Bloch-Redfield framework into a mathematically robust Lindblad equation, while fully preserving the effects that are lost within the secular approximation that is commonly used to guarantee positivity. These previous approaches introduce two potential deficiencies: the environment-induced energy shift can be non-Hermitian and some decay rates can be negative, violating the assumptions of Lindblad's theorem. Here, we propose and evaluate straightforward solutions to both problems. Our approach offers an effective and general procedure for obtaining a Lindblad equation, derived from a concrete physical environment, while mitigating the unphysical dynamics present in the Bloch-Redfield equation.
12 pages, 7 figures
References in corpus (16)
- QuTiP 2: A Python framework for the dynamics of open quantum systems
- Quantum theory of collective strong coupling of molecular vibrations with a microcavity mode
- Universal Lindblad equation for open quantum systems
- Few-mode Field Quantization of Arbitrary Electromagnetic Spectral Densities
- Bloch-Redfield equations for modeling light-harvesting complexes
- Open Quantum System Dynamics: recovering positivity of the Redfield equation via Partial-Secular Approximation
- Fundamental limitations in Lindblad descriptions of systems weakly coupled to baths
- Completely Positive, Simple, and Possibly Highly Accurate Approximation of the Redfield Equation
- Lindbladian approximation beyond ultra-weak coupling
- Benchmarking the cosmological master equations
- Few-mode Field Quantization for Multiple Emitters
- Canonically consistent quantum master equation
- A Lindblad master equation capable of describing hybrid quantum systems in the ultra-strong coupling regime
- Searching for Lindbladians obeying local conservation laws and showing thermalization
- A time-dependent regularization of the Redfield equation
- Vacuum-field-induced state mixing
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- Field mixing in a thermal medium: A quantum master equation approach
- Preserving fermionic statistics for single-particle approximations in microscopic quantum master equations