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All-optical control of a solid-state spin using coherent dark states

机译:使用相干暗态对固态自旋进行全光学控制

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摘要

The study of individual quantum systems in solids, for use as quantum bits (qubits) and probes of decoherence, requires protocols for their initialization, unitary manipulation, and readout. In many solid-state quantum systems, these operations rely on disparate techniques that can vary widely depending on the particular qubit structure. One such qubit, the nitrogen-vacancy (NV) center spin in diamond, can be initialized and read out through its special spin-selective intersystem crossing, while microwave electron spin resonance techniques provide unitary spin rotations. Instead, we demonstrate an alternative, fully optical approach to these control protocols in an NV center that does not rely on its intersystem crossing. By tuning an NV center to an excited-state spin anticrossing at cryogenic temperatures, we use coherent population trapping and stimulated Raman techniques to realize initialization, readout, and unitary manipulation of a single spin. Each of these techniques can be performed directly along any arbitrarily chosen quantum basis, removing the need for extra control steps to map the spin to and from a preferred basis. Combining these protocols, we perform measurements of the NV center’s spin coherence, a demonstration of this full optical control. Consisting solely of optical pulses, these techniques enable control within a smaller footprint and within photonic networks. Likewise, this unified approach obviates the need for both electron spin resonance manipulation and spin addressability through the intersystem crossing. This method could therefore be applied to a wide range of potential solid-state qubits, including those which currently lack a means to be addressed.
机译:对用作量子位(qubit)和退相干探针的固体中单个量子系统的研究,需要用于其初始化,统一操纵和读出的协议。在许多固态量子系统中,这些操作依赖于不同的技术,这些技术可能会因特定的量子位结构而相差很大。一种这样的量子位,即金刚石中的氮空位(NV)中心自旋,可以通过其特殊的自旋选择系统间交叉来初始化和读出,而微波电子自旋共振技术则提供了整体自旋旋转。相反,我们在NV中心展示了一种替代的,完全光学的方法来控制这些控制协议,该方法不依赖于系统间的交叉。通过在低温下将NV中心调整到激发态自旋反交叉,我们使用相干的种群捕获和受激拉曼技术来实现单个自旋的初始化,读出和统一操纵。这些技术中的每一种都可以直接沿任意选择的量子基础执行,从而无需额外的控制步骤即可将自旋映射到首选基础上。结合这些协议,我们将对NV中心的自旋相干性进行测量,以证明这种完整的光学控制。这些技术仅由光脉冲组成,因此可以在较小的占地面积内和在光子网络内进行控制。同样,这种统一的方法消除了通过系统间交叉对电子自旋共振操作和自旋寻址能力的需求。因此,该方法可以应用于各种潜在的固态量子位,包括那些目前尚无待解决的方法。

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