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Towards Laterally Resolved Ferromagnetic Resonance with Spin-Polarized Scanning Tunneling Microscopy

机译:自旋极化扫描隧道显微镜的横向分辨铁磁共振。

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摘要

We used a homodyne detection to investigate the gyration of magnetic vortex cores in Fe islands on W(110) with spin-polarized scanning tunneling microscopy at liquid helium temperatures. The technique aims at local detection of the spin precession as a function of frequency using a radio-frequency (rf) modulation of the tunneling bias voltage. The gyration was excited by the resulting spin-polarized rf current in the tunneling junction. A theoretical analysis of different contributions to the frequency-dependent signals expected in this technique is given. These include, besides the ferromagnetic resonance signal, also signals caused by the non-linearity of the I(U) characteristics. The vortex gyration was modeled with micromagnetic finite element methods using realistic parameters for the tunneling current, its spin polarization, and the island shape, and simulations were compared with the experimental results. The observed signals are presented and critically analyzed.
机译:我们使用零差检测来研究液氦温度下自旋极化扫描隧道显微镜在W(110)上的Fe岛上的磁涡旋核的回转。该技术旨在使用隧穿偏置电压的射频(rf)调制,根据频率对自旋进动进行局部检测。隧道结中产生的自旋极化射频电流激发了回转。给出了对该技术中预期的频率相关信号的不同贡献的理论分析。除铁磁共振信号外,这些信号还包括 I U < / math>特征。利用微磁有限元方法,利用隧道电流,其自旋极化和岛形的实际参数,对涡旋回旋进行了建模,并将仿真与实验结果进行了比较。呈现观察到的信号并进行严格分析。

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