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Shape Anisotropy and Magnetization Modulation in Hexagonal Cobalt Nanowires

机译:六角钴纳米线的形状各向异性和磁化调制

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Ferromagnetic cobalt nanowires with high-crystalline quality are synthesized using a low-voltage electrodeposition method. High-resolution transmission electron microscopy (HRTEM) and X-ray diffraction (XRD) results show that the nanowires are uniform in size, and consist of predominantly hexagonal close-packed (hep) structure with the magnetocrystalline easy axis (c-axis) perpendicular to the wire axis. Superconducting quantum interference device (SOUID) measurements illustrate the dominance of shape anisotropy, manifested by the weak temperature dependence of the enhanced coercive field along the wire axis. Furthermore, the magnetic structures of individual, segmented, or intersected nanowires are studied using magnetic force microscopy. This reveals a strong dipole at the two ends of the wire, together with a spatial magnetization modulation along the wire. Based on theoretical modeling, such intrinsic modulation is attributed to magnetization frustration due to the competition between the magnetocrystalline polarization along the easy axis and the shape anisotropy along the wire axis.
机译:使用低压电沉积方法合成了具有高结晶质量的铁磁钴纳米线。高分辨率透射电子显微镜(HRTEM)和X射线衍射(XRD)结果表明,纳米线尺寸均匀,主要由六方密堆积(hep)结构组成,磁晶易轴(c轴)垂直到线轴。超导量子干涉装置(SOUID)的测量说明了形状各向异性的优势,这表现为沿线轴的增强矫顽场对温度的依赖性较弱。此外,使用磁力显微镜研究了单独的,分段的或相交的纳米线的磁性结构。这揭示了导线两端的强偶极子,以及沿着导线的空间磁化调制。基于理论模型,由于沿易轴的磁晶极化与沿线轴的形状各向异性之间的竞争,这种固有调制归因于磁化强度的抑制。

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