Non-Markovian quantum dissipative processes with the same positive features as Markovian dissipative processes
arXiv:1601.01246 · doi:10.1103/PhysRevA.93.012117
Abstract
It has been found that Markovian quantum dissipative processes, described by the Lindblad equation, may have attractive steady-state manifolds, in which dissipation and decoherence can play a positive role to quantum information processing. In this article, we show that such attractive steady-state manifolds with the same positive features as in Markovian dissipative processes can exist in the non-Markovian dissipative processes. Our finding indicates that the dissipation-assisted schemes implemented in the Markovian systems can be directly generalized to the non-Markovian systems.
5 pages, no figure
References in corpus (9)
- Quantum States and Phases in Driven Open Quantum Systems with Cold Atoms
- An Open-System Quantum Simulator with Trapped Ions
- Dissipative preparation of entanglement in optical cavities
- Constrained dynamics via the Zeno effect in quantum simulation: Implementing non-Abelian lattice gauge theories with cold atoms
- Dissipative Preparation of Spin Squeezed Atomic Ensembles in a Steady State
- Analysis of quantum semigroups with GKS--Lindblad generators II. General
- Coherent quantum dynamics in steady-state manifolds of strongly dissipative systems
- Analysis of quantum semigroups with GKS-Lindblad generators I. Simple generators
- Transition from diffusive to ballistic dynamics for a class of finite quantum models
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- General approach to find steady-state manifolds in Markovian and non-Markovian systems
- Retrieving maximum information of symmetric states from their corrupted copies