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High-Gradient Nanomagnets on Cantilevers for Sensitive Detection of Nuclear Magnetic Resonance

机译:用于悬臂上的高梯度纳米磁磁磁镜用于核磁共振的敏感检测

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摘要

Detection of magnetic resonance as a force between a magnetic tip and nuclear spins has previously been shown to enable sub-10 nm resolution 1H imaging. Maximizing the spin force in such a magnetic resonance force microscopy (MRFM) experiment demands a high field gradient. In order to study a wide range of samples, it is equally desirable to locate the magnetic tip on the force sensor. Here we report the development of attonewton-sensitivity cantilevers with high gradient cobalt nanomagnet tips. The damage layer thickness and saturation magnetization of the magnetic material were characterized by X-ray photoelectron spectroscopy and superconducting quantum interference device magnetometry. The coercive field and saturation magnetization of an individual tip were quantified in situ using frequency-shift cantilever magnetometry. Measurements of cantilever dissipation versus magnetic field and tip-sample separation were conducted. MRFM signals from protons in a polystyrene film were studied versus rf irradiation frequency and tip-sample separation, and from this data the tip field and tip-field gradient were evaluated. Magnetic tip performance was assessed by numerically modeling the frequency dependence of the magnetic resonance signal. We observed a tip-field gradient Bztipz estimated to be between 4.4 and 5.4 MT m−1, which is comparable to the gradient used in recent 4 nm resolution 1H imaging experiments and larger by nearly an order of magnitude than the gradient achieved in prior magnet-on-cantilever MRFM experiments.
机译:以前已经证明,将磁共振检测为磁尖端和核自旋之间的力可以实现低于10 nm的分辨率 1 H成像。在这种磁共振力显微镜(MRFM)实验中,使自旋力最大化需要高的磁场梯度。为了研究广泛的样本,同样需要将磁性探针放在力传感​​器上。在这里,我们报道了具有高梯度钴纳米磁体尖端的attonewton灵敏度悬臂的发展。磁性材料的损伤层厚度和饱和磁化强度通过X射线光电子能谱和超导量子干涉仪磁化法表征。使用频移悬臂磁力仪原位定量了单个尖端的矫顽场和饱和磁化强度。进行了悬臂耗散与磁场和尖端样品分离的测量。研究了聚苯乙烯薄膜中质子的MRFM信号与射频辐射频率和尖端样品分离之间的关系,并根据该数据评估了尖端场和尖端场梯度。通过对磁共振信号的频率依赖性进行数值建模来评估磁头性能。我们观察到尖端场梯度 < mo>∂ B z 技巧 z 估计在4.4到5.4 MT m −1 之间,与最近4 nm中使用的梯度相当分辨率 1 H成像实验,比以前的悬臂磁体MRFM实验获得的梯度大近一个数量级。

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