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Scanned-probe detection of electron spin resonance from a nitroxide spin probe

机译:从一氧化氮自旋探针的电子自旋共振的扫描探针检测

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摘要

We report an approach that extends the applicability of ultrasensitive force-gradient detection of magnetic resonance to samples with spin-lattice relaxation times (T 1) as short as a single cantilever period. To demonstrate the generality of the approach, which relies on detecting either cantilever frequency or phase, we used it to detect electron spin resonance from a T 1 = 1 ms nitroxide spin probe in a thin film at 4.2 K and 0.6 T. By using a custom-fabricated cantilever with a 4 μm-diameter nickel tip, we achieve a magnetic resonance sensitivity of 400 Bohr magnetons in a 1 Hz bandwidth. A theory is presented that quantitatively predicts both the lineshape and the magnitude of the observed cantilever frequency shift as a function of field and cantilever-sample separation. Good agreement was found between nitroxide T 1 's measured mechanically and inductively, indicating that the cantilever magnet is not an appreciable source of spin-lattice relaxation here. We suggest that the new approach has a number of advantages that make it well suited to push magnetic resonance detection and imaging of nitroxide spin labels in an individual macromolecule to single-spin sensitivity.
机译:我们报告了一种方法,该方法将磁共振的超灵敏力梯度检测的适用性扩展到具有单个悬臂周期短的自旋晶格弛豫时间(T 1)的样品。为了证明该方法的普遍性,该方法依赖于检测悬臂频率或相位,我们将其用于检测T 1 = 1 ms的一氧化氮自旋探针在4.2 K和0.6 T下的薄膜中的电子自旋共振。定制制造的带有4μm直径镍尖端的悬臂,我们在1 Hz带宽内实现了400 Bohr磁子的磁共振灵敏度。提出了一种理论,该理论定量地预测了观察到的悬臂频移的线形和幅度,它们是场和悬臂样本分离的函数。在机械和电感测得的氮氧化物T 1之间发现了良好的一致性,表明此处的悬臂磁体不是自旋晶格弛豫的明显来源。我们建议新方法具有许多优势,使其非常适合将磁共振检测和单个大分子中一氧化氮自旋标记物的成像推向单旋灵敏度。

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