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Room temperature high-fidelity holonomic single-qubit gate on a solid-state spin

机译:固态自旋上的室温高保真完整单量子位门

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摘要

At its most fundamental level, circuit-based quantum computation relies on the application of controlled phase shift operations on quantum registers. While these operations are generally compromised by noise and imperfections, quantum gates based on geometric phase shifts can provide intrinsically fault-tolerant quantum computing. Here we demonstrate the high-fidelity realization of a recently proposed fast (non-adiabatic) and universal (non-Abelian) holonomic single-qubit gate, using an individual solid-state spin qubit under ambient conditions. This fault-tolerant quantum gate provides an elegant means for achieving the fidelity threshold indispensable for implementing quantum error correction protocols. Since we employ a spin qubit associated with a nitrogen-vacancy colour centre in diamond, this system is based on integrable and scalable hardware exhibiting strong analogy to current silicon technology. This quantum gate realization is a promising step towards viable, fault-tolerant quantum computing under ambient conditions.
机译:从根本上讲,基于电路的量子计算依赖于在量子寄存器上应用受控相移操作。虽然这些操作通常会受到噪声和缺陷的影响,但是基于几何相移的量子门可以提供本质上容错的量子计算。在这里,我们演示了在环境条件下使用单个固态自旋量子位,最近提出的快速(非绝热)和通用(非阿贝尔)完整单量子位门的高保真实现。这种容错量子门为实现实现量子误差校正协议必不可少的保真度阈值提供了一种优雅的方法。由于我们在钻石中采用了与氮空位色心相关的自旋量子位,因此该系统基于可集成且可扩展的硬件,与当前的硅技术具有很强的相似性。这种量子门的实现是朝着在环境条件下可行的,容错的量子计算迈出的有希望的一步。

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