论文标题
基于穿梭的两量逻辑门,用于链接遥远的硅量子处理器
A shuttling-based two-qubit logic gate for linking distant silicon quantum processors
论文作者
论文摘要
使用两个Qubit Gate在遥远的量子处理器处的Qubits之间控制纠缠是量子计算的可扩展模块化实现的基本函数。在许多量子平台中,硅量子点中的旋转Qubits有望与它们的纳米制作能力一起进行大规模整合。但是,将遥远的硅量子处理器连接起来,因为旋转盘中的两分门通常利用短距离交换耦合,这仅在最近的邻居量子点之间有效。在这里,我们通过连贯的自旋穿梭在旋转Qubits之间展示了一个两倍的门,这是一种连接遥远的硅量子处理器的关键技术。旋转量子标筒的连贯穿梭可以有效地切换交换耦合,而ON/OFF比率超过1,000,同时,在相邻点之间的单个穿梭情况下,旋转相干性保持了99.6%。通过这种穿梭模式的交换控制,我们演示了一个两倍的受控遗迹门,忠诚度为93%,通过随机基准测试进行了评估。我们的技术和量子置量子阵列量子阵列的相位相干穿梭的结合将为通往遥远的硅量子处理器之间的量子连接提供可行的路径,这是大规模量子计算的关键要求。
Control of entanglement between qubits at distant quantum processors using a two-qubit gate is an essential function of a scalable, modular implementation of quantum computation. Among the many qubit platforms, spin qubits in silicon quantum dots are promising for large-scale integration along with their nanofabrication capability. However, linking distant silicon quantum processors is challenging as two-qubit gates in spin qubits typically utilize short-range exchange coupling, which is only effective between nearest-neighbor quantum dots. Here we demonstrate a two-qubit gate between spin qubits via coherent spin shuttling, a key technology for linking distant silicon quantum processors. Coherent shuttling of a spin qubit enables efficient switching of the exchange coupling with an on/off ratio exceeding 1,000 , while preserving the spin coherence by 99.6% for the single shuttling between neighboring dots. With this shuttling-mode exchange control, we demonstrate a two-qubit controlled-phase gate with a fidelity of 93%, assessed via randomized benchmarking. Combination of our technique and a phase coherent shuttling of a qubit across a large quantum dot array will provide feasible path toward a quantum link between distant silicon quantum processors, a key requirement for large-scale quantum computation.