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Manipulation of the nuclear spin ensemble in a quantum dot with chirped magnetic resonance pulses

机译:用chi脉冲产生的量子点操纵核自旋集合体

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The nuclear spins in nanostructured semiconductors play a central role in quantum applications. The nuclear spins represent a useful resource for generating local magnetic fields but nuclear spin noise represents a major source of dephasing for spin qubits. Controlling the nuclear spins enhances the resource while suppressing the noise. NMR techniques are challenging: the group III and V isotopes have large spins with widely different gyromagnetic ratios; in strained material there are large atom-dependent quadrupole shifts; and nanoscale NMR is hard to detect. We report NMR on 100,000 nuclear spins of a quantum dot using chirped radiofrequency pulses. Following polarization, we demonstrate a reversal of the nuclear spin. We can flip the nuclear spin back and forth a hundred times.We demonstrate that chirped NMR is a powerful way of determining the chemical composition, the initial nuclear spin temperatures and quadrupole frequency distributions for all the main isotopes. The key observation is a plateau in the NMR signal as a function of sweep rate: we achieve inversion at the first quantum transition for all isotopes simultaneously. These experiments represent a generic technique for manipulating nanoscale inhomogeneous nuclear spin ensembles and open the way to probe the coherence of such mesoscopic systems.
机译:纳米结构半导体中的核自旋在量子应用中起着核心作用。核自旋代表了产生局部磁场的有用资源,但核自旋噪声代表了自旋量子比特移相的主要来源。控制核自旋可在抑制噪声的同时增强资源。核磁共振技术具有挑战性:III和V族同位素具有较大的自旋,旋回比大不相同。在应变材料中,存在依赖于原子的大四极位移;纳米NMR很难检测。我们使用using射频脉冲报告了一个量子点的100,000个核自旋的NMR。极化之后,我们证明了核自旋的逆转。我们可以将核自旋来回翻转一百次。我们证明了chiNMR是确定所有主要同位素的化学组成,初始核自旋温度和四极子频率分布的有效方法。关键的观察结果是NMR信号的平稳度是扫描速率的函数:我们同时在所有同位素的第一个量子跃迁处实现了反演。这些实验代表了一种用于处理纳米级不均匀核自旋集合的通用技术,并为探查此类介观系统的相干性开辟了道路。

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