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悬臂上的高梯度纳米磁体用于灵敏检测核磁共振。

High-gradient nanomagnets on cantilevers for sensitive detection of nuclear magnetic resonance.

机构信息

Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14853, United States.

出版信息

ACS Nano. 2012 Nov 27;6(11):9637-45. doi: 10.1021/nn3030628. Epub 2012 Oct 10.

Abstract

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 ∂B(z)(tip)/∂z 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.

摘要

先前已经证明,磁共振检测可使磁场探针与核自旋之间产生力,从而实现小于 10nm 分辨率的 1H 成像。在这种磁共振力显微镜(MRFM)实验中,最大程度地提高自旋力需要高磁场梯度。为了研究广泛的样品,同样需要将磁场探针定位在力传感器上。在这里,我们报告了具有高梯度钴纳米磁探针的阿特牛顿灵敏度悬臂梁的开发。通过 X 射线光电子能谱和超导量子干涉器件磁力计对磁材料的损伤层厚度和饱和磁化强度进行了表征。使用频率偏移悬臂梁磁强计原位定量了单个探针的矫顽力和饱和磁化强度。进行了悬臂梁耗散与磁场和探针-样品分离的测量。研究了聚苯乙烯膜中质子的 MRFM 信号与射频辐照频率和探针-样品分离的关系,并根据这些数据评估了探针场和探针场梯度。通过数值模拟磁共振信号的频率依赖性来评估磁探针的性能。我们观察到估计的探针场梯度∂B(z)(tip)/∂z 为 4.4 至 5.4 MT m(-1),与最近的 4nm 分辨率 1H 成像实验中使用的梯度相当,比先前的磁探针 MRFM 实验中实现的梯度大近一个数量级。

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