论文标题
捕获近期量子计算机上的非马克维亚动力学
Capturing Non-Markovian Dynamics on Near-Term Quantum Computers
论文作者
论文摘要
随着量子硬件的快速发展,人们对新的量子算法的兴趣增加了,以描述复杂的多体系统,以寻找“有用的量子优势”的仍然难以捉摸的目标。出乎意料的是,用于处理开放量子系统(OQSS)的量子算法尚未探索,部分原因是将非单身演变映射到统一大门框架的固有挑战。开放系统的发展需要扩张成一个新的有效系统,以纳入关键的环境自由度。在这种情况下,我们介绍并验证一种新的量子算法来处理在Lindblad的轨迹方法中构建的OQSS中的非马克维亚动力学,并调用了SZ.-NAGY扩张定理。在这里,我们在强耦合和失调的方案中演示了有关Jaynes-Cummings模型的算法,与量子光学和驱动量子系统研究有关。该算法是在嘈杂的量词设备上迈向非马克维亚动力学建模的关键步骤,它捕获了一类广泛的动力学,并在OQS问题中打开了新的方向。
With the rapid progress in quantum hardware, there has been an increased interest in new quantum algorithms to describe complex many-body systems searching for the still-elusive goal of 'useful quantum advantage'. Surprisingly, quantum algorithms for the treatment of open quantum systems (OQSs) have remained under-explored, in part due to the inherent challenges of mapping non-unitary evolution into the framework of unitary gates. Evolving an open system unitarily necessitates dilation into a new effective system to incorporate critical environmental degrees of freedom. In this context, we present and validate a new quantum algorithm to treat non-Markovian dynamics in OQSs built on the Ensemble of Lindblad's Trajectories approach, invoking the Sz.-Nagy dilation theorem. Here we demonstrate our algorithm on the Jaynes-Cummings model in the strong coupling and detuned regimes, relevant in quantum optics and driven quantum systems studies. This algorithm, a key step towards generalized modeling of non-Markovian dynamics on a noisy-quantum device, captures a broad class of dynamics and opens up a new direction in OQS problems.