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Microwave-driven coherent operation of a semiconductor quantum dot charge qubit

机译:微波驱动半导体量子点电荷量子位的相干运算

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摘要

An intuitive realization of a qubit is an electron charge at two well-defined positions of a double quantum dot. This qubit is simple and has the potential for high-speed operation because of its strong coupling to electric fields. However, charge noise also couples strongly to this qubit, resulting in rapid dephasing at all but one special operating point called the ` sweet spot'. In previous studies d.c. voltage pulses have been used to manipulate semiconductor charge qubits(1-8) but did not achieve high-fidelity control, because d.c. gating requires excursions away from the sweet spot. Here, by using resonant a. c. microwave driving we achieve fast (greater than gigahertz) and universal single qubit rotations of a semiconductor charge qubit. The Z-axis rotations of the qubit are well protected at the sweet spot, and we demonstrate the same protection for rotations about arbitrary axes in the X-Y plane of the qubit Bloch sphere. We characterize the qubit operation using two tomographic approaches: standard process tomography(9,10) and gate set tomography(11). Both methods consistently yield process fidelities greater than 86% with respect to a universal set of unitary single-qubit operations.
机译:量子位的直观实现是在双量子点的两个明确定义的位置处的电子电荷。该量子位很简单,由于它与电场的强耦合,因此具有高速运行的潜力。但是,电荷噪声也与该量子位紧密耦合,导致除了一个特殊的工作点即“最佳点”以外的所有点都快速移相。在以前的研究中电压脉冲已被用于操纵半导体电荷量子位(1-8),但由于d.c.选通要求远离最佳位置的游览。在这里,通过使用谐振a。 C。微波驱动实现了半导体电荷量子位的快速(大于千兆赫)和通用单量子位旋转。量子位的Z轴旋转在最佳位置得到了很好的保护,并且我们展示了对量子位Bloch球的X-Y平面中围绕任意轴的旋转的相同保护。我们使用两种层析成像方法来表征量子位操作:标准过程层析成像(9,10)和门控层析成像(11)。相对于一组统一的单一单量子位运算,这两种方法始终可产生大于86%的过程保真度。

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