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Magnetic Resonance Force Microscopy Detected Long-Lived Spin Magnetization

机译:磁共振力显微镜检测到长寿命自旋磁化强度

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Magnetic resonance force microscopy (MRFM), which combines magnetic resonance imaging with scanning probe microscopy together, is capable of performing ultra-sensitive detection of spin magnetization. In an attempt to observe dynamic nuclear polarization (DNP) in an MRFM experiment, which could possibly further improve its sensitivity towards a single proton spin, a film of perdeuterated polystyrene doped with a nitroxide electron-spin probe was prepared. A high-compliance cantilever with a 4-$mu{hbox {m}}$-diameter magnetic tip was brought near the film at a temperature of 7.3 K and in a background magnetic field of $sim$0.6 T. The film was irradiated with 16.7-GHz microwaves while the resulting transient change in cantilever frequency was recorded in real time. In addition to observing the expected prompt change in cantilever frequency due to saturation of the nitroxide's electron-spin magnetization, we observed a persistent cantilever frequency change. Based on its magnitude, lifetime, and field dependence, we tentatively attribute the persistent signal to polarized deuteron magnetization created via transfer of magnetization from electron spins. Further measurements of the persistent signal's dependence on the cantilever amplitude and tip-sample separation are presented and explained by the cross-effect DNP mechanism in high magnetic field gradients.
机译:将磁共振成像与扫描探针显微镜结合在一起的磁共振力显微镜(MRFM)能够执行自旋磁化强度的超灵敏检测。为了尝试在MRFM实验中观察动态核极化(DNP),这可能会进一步提高其对单个质子自旋的敏感性,制备了掺杂有氮氧化物电子自旋探针的全氘化聚苯乙烯薄膜。将直径为4- $ mu {hbox {m}} $ $ sim $ 0.6 T的条件下进行辐照。用16.7辐照-GHz微波,同时实时记录悬臂频率的瞬态变化。除了观察到由于氮氧化物的电子自旋磁化饱和而导致的悬臂频率的预期快速变化之外,我们还观察到了持续的悬臂频率变化。根据其大小,寿命和场依赖性,我们将持久性信号归因于通过电子自旋的磁化转移而产生的极化氘核磁化。通过在高磁场梯度中的交叉效应DNP机制,对持久信号对悬臂幅度和尖端样本分离的依赖性进行了进一步的测量和解释。

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