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Single-photon heralded two-qubit unitary gates for pairs of nitrogen-vacancy centers in diamond

机译:钻石中的单射线预示着双时Qubit Unitary栅极

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摘要

The implementation of a high-fidelity two-qubit quantum logic gate remains an outstanding challenge for isolated solid-state qubits such as nitrogen-vacancy (NV) centers in diamond. In this work, we show that by driving pairs of NV centers to undergo photon scattering processes that flip their qubit states simultaneously, we can achieve a unitary two-qubit gate conditioned upon a single photon-detection event. Further, by exploiting quantum interference between the optical transitions of the NV centers' electronic states, we realize the existence of two special drive frequencies: a "magic" point where the spin-preserving elastic scattering rates are suppressed and a "balanced" point where the state-flipping scattering rates are equal. We analyzed four different gate operation schemes that utilize these two special drive frequencies, and various combinations of polarizations in the drive and collection paths. Our theoretical and numerical calculations show that the gate fidelity can be as high as 98%. The proposed unitary gate, combined with available single-qubit unitary operations, forms a universal gate set for quantum computing.
机译:高保真两种量子比量子逻辑门的实施仍然是诸如金刚石中的氮空位(NV)中心的隔离固态Qubits的出色挑战。在这项工作中,我们表明,通过驱动一对NV中心来接受同时翻转其量子位状态的光子散射过程,我们可以实现在单个光子检测事件上调节的单一的双量标栅极。此外,通过利用NV中心电子状态的光学转变之间的量子干扰,我们实现了两个特殊驱动频率的存在:抑制自旋保留弹性散射率的“魔法”点,并且在其中“平衡”点状态翻转散射率相等。我们分析了使用这两个特殊驱动频率的四种不同的栅极操作方案,以及驱动器和集合路径中的各种偏振组合。我们的理论和数值计算表明,栅极保真度可以高达98%。所提出的酉栅极与可用的单QUB间接操作组合,形成用于量子计算的通用门。

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