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金刚石中自旋量子比特的环境介导相干控制

Environmentally Mediated Coherent Control of a Spin Qubit in Diamond.

作者信息

Lillie Scott E, Broadway David A, Wood James D A, Simpson David A, Stacey Alastair, Tetienne Jean-Philippe, Hollenberg Lloyd C L

机构信息

Centre for Quantum Computation and Communication Technology, School of Physics, The University of Melbourne, Melbourne, VIC 3010, Australia.

School of Physics, The University of Melbourne, Melbourne, VIC 3010, Australia.

出版信息

Phys Rev Lett. 2017 Apr 21;118(16):167204. doi: 10.1103/PhysRevLett.118.167204. Epub 2017 Apr 19.

Abstract

The coherent control of spin qubits forms the basis of many applications in quantum information processing and nanoscale sensing, imaging, and spectroscopy. Such control is conventionally achieved by direct driving of the qubit transition with a resonant global field, typically at microwave frequencies. Here we introduce an approach that relies on the resonant driving of nearby environment spins, whose localized magnetic field in turn drives the qubit when the environmental spin Rabi frequency matches the qubit resonance. This concept of environmentally mediated resonance (EMR) is explored experimentally using a qubit based on a single nitrogen-vacancy (NV) center in diamond, with nearby electronic spins serving as the environmental mediators. We demonstrate EMR driven coherent control of the NV spin state, including the observation of Rabi oscillations, free induction decay, and spin echo. This technique also provides a way to probe the nanoscale environment of spin qubits, which we illustrate by acquisition of electron spin resonance spectra from single NV centers in various settings.

摘要

自旋量子比特的相干控制构成了量子信息处理以及纳米级传感、成像和光谱学中许多应用的基础。传统上,这种控制是通过用共振全局场直接驱动量子比特跃迁来实现的,该全局场通常处于微波频率。在此,我们介绍一种方法,该方法依赖于对附近环境自旋的共振驱动,当环境自旋拉比频率与量子比特共振匹配时,其局部磁场进而驱动量子比特。使用基于金刚石中单个氮空位(NV)中心的量子比特,以附近的电子自旋作为环境介质,通过实验探索了这种环境介导共振(EMR)的概念。我们展示了由EMR驱动的NV自旋态的相干控制,包括拉比振荡、自由感应衰减和自旋回波的观测。该技术还提供了一种探测自旋量子比特纳米级环境的方法,我们通过采集各种环境下单个NV中心的电子自旋共振光谱对此进行了说明。

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