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Adiabatic Elimination for Multi-Partite Open Quantum Systems with Non-Trivial Zero-Order Dynamics

机译:具有非零零阶动力学的多粒子开放量子系统的绝热消除

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We provide model reduction formulas for open quantum systems consisting of a target component which weakly interacts with a strongly dissipative environment. The time-scale separation between the uncoupled dynamics and the interaction allows to employ tools from center manifold theory and geometric singular perturbation theory to eliminate the variables associated to the environment (adiabatic elimination) with high-order accuracy. An important specificity is to preserve the quantum structure: reduced dynamics in (positive) Lindblad form and coordinate mappings in Kraus form. We provide formulas of the reduced dynamics. The main contributions of this paper are (i) to show how the decomposition of the environment into $K$ components enables its efficient treatment, avoiding the quantum curse of dimension; and (ii) to extend the results to the case where the target component is subject to Hamiltonian evolution at the fast time-scale. We apply our theory to a microwave superconducting quantum resonator subject to material losses, and we show that our reduced-order model can explain the transmission spectrum observed in a recent pump probe experiment.
机译:我们提供了一种开放量子系统的模型约简公式,该模型由与弱耗散环境弱相互作用的目标组分组成。非耦合动力学和相互作用之间的时标分离允许使用中心流形理论和几何奇异摄动理论中的工具以高阶精度消除与环境相关的变量(绝热消除)。一个重要的特殊性是保持量子结构:(正)林德布拉德形式的动力学降低,克劳斯形式的坐标映射。我们提供了降低动力的公式。本文的主要贡献是:(i)展示如何将环境分解为$ K $组件,使其能够有效地处理,避免了维数的量子诅咒; (ii)将结果扩展到目标成分在快速时间尺度上经历哈密顿量演化的情况。我们将我们的理论应用于遭受材料损失的微波超导量子谐振器,并且我们证明了我们的降阶模型可以解释在最近的泵浦探针实验中观察到的透射光谱。

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