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Dynamical Purification Phase Transition Induced by Quantum Measurements

机译:量子测量诱导的动态纯化阶段转变

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Continuously monitoring the environment of a quantum many-body system reduces the entropy of (purifies) the reduced density matrix of the system, conditional on the outcomes of the measurements. We show that, for mixed initial states, a balanced competition between measurements and entangling interactions within the system can result in a dynamical purification phase transition between (i) a phase that locally purifies at a constant system-size-independent rate and (ii) a “mixed” phase where the purification time diverges exponentially in the system size. The residual entropy density in the mixed phase implies the existence of a quantum error-protected subspace, where quantum information is reliably encoded against the future nonunitary evolution of the system. We show that these codes are of potential relevance to fault-tolerant quantum computation as they are often highly degenerate and satisfy optimal trade-offs between encoded information densities and error thresholds. In spatially local models in 1 t 1 dimensions, this phase transition for mixed initial states occurs concurrently with a recently identified class of entanglement phase transitions for pure initial states. The purification transition studied here also generalizes to systems with long-range interactions, where conventional notions of entanglement transitions have to be reformulated. We numerically explore this transition for monitored random quantum circuits in 1 t 1 dimensions and all-to-all models. Unlike in pure initial states, the mutual information of an initially completely mixed state in 1 t 1 dimensions grows sublinearly in time due to the formation of the error-protected subspace. Purification dynamics is likely a more robust probe of the transition in experiments, where imperfections generically reduce entanglement and drive the system towards mixed states. We describe the motivations for studying this novel class of nonequilibrium quantum dynamics in the context of advanced quantum computing platforms and fault-tolerant quantum computation.
机译:连续监测量子的环境数量的环境减少了(净化)的熵(净化)减小的系统的密度矩阵,条件是测量结果的条件。我们表明,对于混合初始状态,系统内的测量和缠结相互作用之间的平衡竞争可能导致(i)以恒定的系统尺寸无关的速率和(ii)局部净化的相位之间的动态净化阶段转变纯化时间在系统尺寸中呈指数逐渐发散的“混合”阶段。混合相中的残余熵密度意味着存在量子误差保护子空间,其中量子信息可靠地编码系统的未来不间间的演化。我们表明这些代码与容错量子计算具有潜在的相关性,因为它们通常在编码信息密度和错误阈值之间的高度堕落和满足最佳的权衡。在1 T 1维度的空间本地模型中,混合初始状态的该相转变与最近识别的纯初始状态的最近识别的纠缠阶段转换同时发生。研究的纯化转变还推广到具有远程相互作用的系统,其中必须重新重整缠结转变的传统概念。我们在数值上探索了在1 T 1维度和全部型号中监视的随机量子电路的过渡。与纯初始状态不同,由于形成错误的子空间,在1 T 1尺寸中最初完全混合状态的互信息在时间上升级。净化动力学可能是在实验中过渡的过渡更强大的探针,其中缺陷术语普遍存在地减少缠结并将系统驱动到混合状态。我们描述了在高级量子计算平台和容错量子计算的背景下研究了研究这一小型非QuiBiRibium动态的动机。

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