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Quantum Simulation
Algebraic solution of the Lindblad equation for a collection of multilevel systems coupled to independent environments
arXiv
Authors: Marduk Bolaños, Pablo Barberis-Blostein
Year
2015
Paper ID
25950
Status
Preprint
Abstract Read
~2 min
Abstract Words
167
Citations
N/A
Abstract
We consider the Lindblad equation for a collection of multilevel systems coupled to independent environments. The equation is symmetric under the exchange of the labels associated with each system and thus the open-system dynamics takes place in the permutation-symmetric subspace of the operator space. The dimension of this space grows polynomially with the number of systems. We construct a basis of this space and a set of superoperators whose action on this basis is easily specified. For a given number of levels, M, these superoperators are written in terms of a bosonic realization of the generators of the Lie algebra sln{M2}. In some cases, these results enable finding an analytic solution of the master equation using known Lie-algebraic methods. To demonstrate this, we obtain an analytic expression for the state operator of a collection of three-level atoms coupled to independent radiation baths. When analytic solutions are difficult to find, the basis and the superoperators can be used to considerably reduce the computational resources required for simulations.
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- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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- We consider the Lindblad equation for a collection of multilevel systems coupled to independent environments.
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