Ma Wen-Long, Zhang Mengzhen, Wong Yat, Noh Kyungjoo, Rosenblum Serge, Reinhold Philip, Schoelkopf Robert J, Jiang Liang
Pritzker School of Molecular Engineering, University of Chicago, Illinois 60637, USA.
Department of Applied Physics and Physics, Yale University, New Haven, Connecticut 06511, USA.
Phys Rev Lett. 2020 Sep 11;125(11):110503. doi: 10.1103/PhysRevLett.125.110503.
Ancilla systems are often indispensable to universal control of a nearly isolated quantum system. However, ancilla systems are typically more vulnerable to environmental noise, which limits the performance of such ancilla-assisted quantum control. To address this challenge of ancilla-induced decoherence, we propose a general framework that integrates quantum control and quantum error correction, so that we can achieve robust quantum gates resilient to ancilla noise. We introduce the path independence criterion for fault-tolerant quantum gates against ancilla errors. As an example, a path-independent gate is provided for superconducting circuits with a hardware-efficient design.
辅助系统对于几乎孤立的量子系统的通用控制通常是不可或缺的。然而,辅助系统通常更容易受到环境噪声的影响,这限制了这种辅助辅助量子控制的性能。为了应对辅助引起的退相干这一挑战,我们提出了一个整合量子控制和量子纠错的通用框架,以便我们能够实现对辅助噪声具有弹性的鲁棒量子门。我们引入了针对辅助错误的容错量子门的路径独立性标准。作为一个例子,为具有硬件高效设计的超导电路提供了一个与路径无关的门。