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Logical Qubit in a Linear Array of Semiconductor Quantum Dots

机译:半导体量子点的线性阵列中的逻辑量子

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We design a logical qubit consisting of a linear array of quantum dots, we analyze error correction for this linear architecture, and we propose a sequence of experiments to demonstrate components of the logical qubit on near-term devices. To avoid the difficulty of fully controlling a two-dimensional array of dots, we adapt spin control and error correction to a one-dimensional line of silicon quantum dots. Control speed and efficiency are maintained via a scheme in which electron spin states are controlled globally using broadband microwave pulses for magnetic resonance, while two-qubit gates are provided by local electrical control of the exchange interaction between neighboring dots. Error correction with two-, three-, and four-qubit codes is adapted to a linear chain of qubits with nearest-neighbor gates. We estimate an error correction threshold of 10 ? 4 . Furthermore, we describe a sequence of experiments to validate the methods on near-term devices starting from four coupled dots.
机译:我们设计一个由线性阵列组成的逻辑量子阵列,我们分析了这种线性架构的纠错,我们提出了一系列实验,以在近期设备上展示逻辑量子位的组件。为了避免难以完全控制二维点阵列,我们将旋转控制和纠错对硅量子点的一维线进行调整。通过一种方案维持控制速度和效率,其中使用宽带微波脉冲来控制电子旋转状态的用于磁共振,而通过局部电气控制相邻点之间的交换相互作用的局部电气控制提供了两种Qubit栅极。使用两个,三个和四个Qubit码进行纠错适用于具有最近邻门的Qubits的线性链。我们估计10的纠错阈值为10? 4。此外,我们描述了一系列实验,以验证从四个耦合点开始的近期设备上的方法。

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