论文标题
在MOS兼容的硅设备中,两个交换耦合的单个单旋转盘的有条件量子操作
Conditional quantum operation of two exchange-coupled single-donor spin qubits in a MOS-compatible silicon device
论文作者
论文摘要
硅纳米电子设备可以托管单品量子逻辑操作,其保真度优于99.9%。对于与单个供体原子结合的电子的自旋,通过离子植入在硅中引入的旋转,可以将量子信息存储近1秒。但是,使用此方法制造可扩展的量子处理器被认为是具有挑战性的,因为交换相互作用的指数敏感性介导了量子位之间的耦合。在这里,我们演示了在植入硅中植入的一对$^{31} $ p捐赠者中对电子自旋量子置保持量保持的条件,连贯的控制。 $ j = 32.06 \ pm 0.06 $ MHz的耦合强度以前所未有的精度进行光谱测量。由于耦合比电子核超精细耦合$ a \约90 $ MHz弱,它会使两个电子失调,因此可以通过简单的电子旋转谐振脉冲获得天然的两小子控制旋转门。该方案对$ j $的精确值不敏感,这使其适用于硅中基于供体的量子计算机的扩展,该计算机利用了经典电子工业中常用的金属氧化物 - 氧化物 - 氧化型制造方案。
Silicon nanoelectronic devices can host single-qubit quantum logic operations with fidelity better than 99.9%. For the spins of an electron bound to a single donor atom, introduced in the silicon by ion implantation, the quantum information can be stored for nearly 1 second. However, manufacturing a scalable quantum processor with this method is considered challenging, because of the exponential sensitivity of the exchange interaction that mediates the coupling between the qubits. Here we demonstrate the conditional, coherent control of an electron spin qubit in an exchange-coupled pair of $^{31}$P donors implanted in silicon. The coupling strength, $J = 32.06 \pm 0.06$ MHz, is measured spectroscopically with unprecedented precision. Since the coupling is weaker than the electron-nuclear hyperfine coupling $A \approx 90$ MHz which detunes the two electrons, a native two-qubit Controlled-Rotation gate can be obtained via a simple electron spin resonance pulse. This scheme is insensitive to the precise value of $J$, which makes it suitable for the scale-up of donor-based quantum computers in silicon that exploit the Metal-Oxide-Semiconductor fabrication protocols commonly used in the classical electronics industry.