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Deriving Lindblad master equations with Keldysh diagrams: Correlated gain and loss in higher order perturbation theory

机译:使用KELDYSH图派生LINDBLAD主方程:在高阶扰动理论中相关的增益和损失

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摘要

Motivated by correlated decay processes producing gain, loss, and lasing in driven semiconductor quantum dots [Phys. Rev. Lett. 113, 036801 (2014); Science 347, 285 (2015); Phys. Rev. Lett. 114, 196802 (2015)], we develop a theoretical technique by using Keldysh diagrammatic perturbation theory to derive a Lindblad master equation that goes beyond the usual second-order perturbation theory. We demonstrate the method on the driven dissipative Rabi model, including terms up to fourth order in the interaction between the qubit and both the resonator and environment. This results in a large class of Lindblad dissipators and associated rates which go beyond the terms that have previously been proposed to describe similar systems. All of the additional terms contribute to the system behavior at the same order of perturbation theory.We then apply these results to analyze the phonon-assisted steady-state gain of a microwave field driving a double quantum dot in a resonator. We show that resonator gain and loss are substantially affected by dephasing-assisted dissipative processes in the quantum-dot system. These additional processes, which go beyond recently proposed polaronic theories, are in good quantitative agreement with experimental observations.
机译:通过相关的衰变过程产生产生的增益,损失和激光在驱动的半导体量子点中的激励[物理。 rev. lett。 113,036801(2014);科学347,285(2015);物理。 rev. lett。 114,196802(2015)],我们通过使用Keldysh示意图扰动理论来发展理论技术,从而推动Lindblad主方程,超出通常的二阶扰动理论。我们展示了驱动的耗散Rabi模型上的方法,包括Qubit与谐振器和环境之间的相互作用中的四分之一的术语。这导致大量的Lindblad散热器和相关率超出先前提出的术语来描述类似系统的术语。所有附加条款都以相同的扰动理论顺序有助于系统行为。然后,我们应用这些结果以分析在谐振器中驱动双量子点的微波场的声子辅稳态增益。我们表明谐振器增益和损失基本上受量子点系统中的辅助耗散过程的辅助耗散过程基本上影响。这些额外的方法超出最近提出的优势理论,与实验观察结果良好。

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