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Probing quantum coherence in single-atom electron spin resonance

机译:在单原子电子自旋共振中探索量子相干性

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Spin resonance of individual spin centers allows applications ranging from quantum information technology to atomic-scale magnetometry. To protect the quantum properties of a spin, control over its local environment, including energy relaxation and decoherence processes, is crucial. However, in most existing architectures, the environment remains fixed by the crystal structure and electrical contacts. Recently, spin-polarized scanning tunneling microscopy (STM), in combination with electron spin resonance (ESR), allowed the study of single adatoms and inter-atomic coupling with an unprecedented combination of spatial and energy resolution. We elucidate and control the interplay of an Fe single spin with its atomic-scale environment by precisely tuning the phase coherence time T 2 using the STM tip as a variable electrode. We find that the decoherence rate is the sum of two main contributions. The first scales linearly with tunnel current and shows that, on average, every tunneling electron causes one dephasing event. The second, effective even without current, arises from thermally activated spin-flip processes of tip spins. Understanding these interactions allows us to maximize T 2 and improve the energy resolution. It also allows us to maximize the amplitude of the ESR signal, which supports measurements even at elevated temperatures as high as 4 K. Thus, ESR-STM allows control of quantum coherence in individual, electrically accessible spins.
机译:各个自旋中心的自旋共振允许应用范围从量子信息技术到原子尺度的磁力计。为了保护自旋的量子特性,控制其局部环境(包括能量弛豫和退相干过程)至关重要。但是,在大多数现有体系结构中,环境仍然由晶体结构和电触点固定。最近,自旋极化扫描隧道显微镜(STM)与电子自旋共振(ESR)相结合,使人们能够以前所未有的空间分辨率和能量分辨率组合研究单个原子和原子间耦合。我们通过使用STM尖端作为可变电极精确调整相位相干时间T 2 来阐明和控制Fe单旋自旋与其原子尺度环境的相互作用。我们发现,退相干率是两个主要贡献的总和。第一个与隧道电流成线性比例,表明平均而言,每个隧道电子都会引起一个移相事件。第二种方法甚至在没有电流的情况下也有效,这是由尖端旋转的热激活旋转翻转过程引起的。了解这些相互作用使我们能够最大化T 2 并提高能量分辨率。它还使我们能够最大化ESR信号的幅度,从而即使在高达4 K的高温下也支持测量。因此,ESR-STM允许控制单个电可及自旋中的量子相干性。

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