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Open quantum systems with local and collective incoherent processes: Efficient numerical simulations using permutational invariance

机译:具有本地和集体非连贯工艺的Quantum系统:使用置适不变性的有效数值模拟

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The permutational invariance of identical two-level systems allows for an exponential reduction in the computational resources required to study the Lindblad dynamics of coupled spin-boson ensembles evolving under the effect of both local and collective noise. Here we take advantage of this speedup to study several important physical phenomena in the presence of local incoherent processes, in which each degree of freedom couples to its own reservoir. Assessing the robustness of collective effects against local dissipation is paramount to predict their presence in different physical implementations. We have developed an open-source library in PYTHON, the Permutational-Invariant Quantum Solver (PIQS), which we use to study a variety of phenomena in driven-dissipative open quantum systems. We consider both local and collective incoherent processes in the weak-, strong-, and ultrastrong-coupling regimes. Using PIQS, we reproduce a series of known physical results concerning collective quantum effects and extend their study to the local driven-dissipative scenario. Our work addresses the robustness of various collective phenomena, e.g., spin squeezing, superradiance, and quantum phase transitions, against local dissipation processes.
机译:相同的两级系统的牵手不变性允许在研究局部和集体噪声的效果下,研究耦合的旋转玻色子集合的LINDBLAD动态所需的计算资源的指数降低。在这里,我们利用这种加速,在存在局部非连贯过程的情况下研究几个重要的物理现象,其中每种自由度耦合到其自己的水库。评估集体效应对局部耗散的稳健性至关重要预测其在不同物理实现中的存在。我们在Python中开发了一个开源库,置换不变的量子求解器(PIQs),我们用于研究驱动 - 耗散开放量子系统中的各种现象。我们考虑弱势,强 - 和超空耦合制度的本地和集体非连贯过程。使用PIQS,我们再现一系列已知的关于集体量子效应的物理结果,并将其研究扩展到局部驱动的耗散情况。我们的工作解决了各种集体现象的稳健性,例如,旋转挤压,超长,量子相转变,对抗局部耗散过程。

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