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Stochastic Wave-Function Simulation of Irreversible Emission Processes for Open Quantum Systems in a Non-Markovian Environment

机译:非马上环境中打开量子系统不可逆排放过程的随机波函数模拟

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When conducting the numerical simulation of quantum transport, the main obstacle is a rapid growth of the dimension of entangled Hilbert subspace. The Quantum Monte Carlo simulation techniques, while being capable of treating the problems of high dimension, are hindered by the so-called "sign problem". In the quantum transport, we have fundamental asymmetry between the processes of emission and absorption of environment excitations: the emitted excitations are rapidly and irreversibly scattered away. Whereas only a small part of these excitations is absorbed back by the open subsystem, thus exercising the non-Markovian self-action of the subsystem onto itself. We were able to devise a method for the exact simulation of the dominant quantum emission processes, while taking into account the small backaction effects in an approximate self-consistent way. Such an approach allows us to efficiently conduct simulations of real-time dynamics of small quantum subsystems immersed in non-Markovian bath for large times, reaching the quasistationary regime. As an example we calculate the spatial quench dynamics of Kondo cloud for a bozonized Kodno impurity model.
机译:在进行量子传输的数值模拟时,主要障碍是缠结的希尔伯特子空间的尺寸快速增长。量子蒙特卡罗仿真技术,同时能够处理高尺寸的问题,受到所谓的“标志问题”的阻碍。在量子传输中,我们在环境激动的排放过程之间具有基本不对称:发出的激励迅速,不可逆转地散落。然而,只有这些激励的一小部分被开放子系统吸收,从而使子系统的非马上自动行动自身锻炼。我们能够设计一种用于精确模拟主导量子排放过程的方法,同时考虑到近似自我一致的方式的小留下效应。这种方法使我们能够有效地进行沉浸在非马浴浴中的小量子系统的实时动态的模拟,达到了额定的方案。作为一个例子,我们计算了Kondoized kodno杂质模型的Kondo Cloud的空间骤冷动态。

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