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Dynamical nuclear decoupling of electron spins in molecular graphenoid radicals and biradicals

机译:电子旋转在分子图标自由基和荚膜中的动态核去耦

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摘要

We investigate the mechanisms of nuclear decoupling in synthetically tailored graphenoids, where the electron spin state is introduced by topological manipulation of the lattice. We compare molecular graphenoids containing one and two spin centers, introduced by pentagonal rings in the honeycomb lattice. Exploiting the molecular nature of the systems, we investigate the role of different nuclear species and environments. Variations on the Carr-Purcell-Meiboom-Gill pulse trains are used to prolong the coherence time of the electron spin of the radicaloids, leading to substantial improvements in performance and coherence times up to 300 μs at liquid-nitrogen temperature. The investigation of electron spin coherence as a function of interpulse spacing, with times close to the inverse of the nuclear precession frequency, reveals that a train of pulses in phase with the nuclear precession maximizes the nuclear decoupling. At room temperature the limits imposed by the sample treatment and environment are reached, indicating what amelioration is necessary to further enhance the quantum performance.
机译:我们调查核去耦合在综合定制石墨骨中的机制,其中通过晶格的拓扑操纵引入电子旋转状态。我们比较含有一个和两个旋转中心的分子石墨骨,由蜂窝晶格中的五角形环引入。利用系统的分子性质,我们调查不同核物种和环境的作用。 Carr-purecell-meiboom-gill脉冲列表的变化用于延长基拓的电子旋转的相干时间,从而在液氮温度下的性能和相干时间的性能和相干时间的显着改善。电子旋转相干性作为闭管间距的函数的研究,靠近核预测频率的倒数,揭示了核预测的阶段脉冲列列最大化核去耦。在室温下,达到样品处理和环境所施加的限制,表明需要改进的改善以进一步提高量子性能。

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  • 来源
    《Physical review》 |2020年第9期|094406.1-094406.8|共8页
  • 作者单位

    Department of Materials University of Oxford 16 Parks Road Oxford OX1 3PH United Kingdom;

    Inorganic Chemistry University of Oxford South Parks Road Oxford OX 1 3QR United Kingdom;

    Centre for Advanced Electronics Faculty of Chemistry and Food Chemistry Technische Universität Monnsenstraße 4 01069 Dresden Germany;

    Department of Chemistry and State Key Laboratory of Synthetic Chemistry The University of Hong Kong Pokfulam Road Hong Kong China;

    Centre for Advanced Electronics Faculty of Chemistry and Food Chemistry Technische Universität Monnsenstraße 4 01069 Dresden Germany;

    Department of Materials University of Oxford 16 Parks Road Oxford OX1 3PH United Kingdom;

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