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首页> 外文期刊>RSC Advances >Transition from strongly collective to completely isolated ultrafast magnetization dynamics in two-dimensional hexagonal arrays of nanodots with varying inter-dot separation
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Transition from strongly collective to completely isolated ultrafast magnetization dynamics in two-dimensional hexagonal arrays of nanodots with varying inter-dot separation

机译:从强烈集体到完全隔离的超速磁化动力学在纳米纸段的二维六边形阵列中完全隔离,不同的点间分离

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摘要

A hexagonally arranged array of ferromagnetic nanodots is particularly interesting because it offers the highest areal density of features achievable using modern nanofabrication techniques. They are important for high density magnetic storage, memory, logic, sensors and magnonic crystals. However, understanding the collective static and dynamic magnetic properties by varying the inter-dot separations in such a lattice has yet not been fully explored. Here, we demonstrate transition from a strongly collective to a completely isolated magnetization dynamics via various weakly collective dynamics by systematically varying the inter-dot separation of circular Ni80Fe20 nanodots of 100 nm in diameter (d) arranged in hexagonal lattice. Time-resolved Kerr microscopy has been exploited to study the ultrafast magnetization dynamics of the arrays with varying inter-dot separation (S) between 30 nm and 390 nm. The transition between different collective regimes was identified from sudden change in frequency values and number of modes in the frequency spectra. This was further supported by the bias field variation of the frequency of various spin wave modes and simulated mode profiles. The latter clearly showed the variation in the nature of the spatial distribution of the collective modes in the arrays in different collective regimes. The observations are imperative for selection of correct values of inter-dot separation in hexagonal arrays of nanodots for various applications.
机译:六角形布置的铁磁纳米型阵列特别有趣,因为它提供了使用现代纳米制作技术可实现的最高的特征密度。它们对于高密度磁存储,记忆,逻辑,传感器和磁性晶体很重要。然而,通过改变这种晶格中的圆点分离来了解集体静态和动态磁性,尚未完全探索。这里,我们通过系统地改变在六边形格子中布置的直径(d)的圆形Ni80Fe20纳米蛋白的圆形Ni80Fe20纳米蛋白的圆形Ni80Fe20纳米蛋白的间隔分离,从强烈集体到完全隔离磁化动力学的转变。已经利用了时间分辨的KERR显微镜,以研究阵列的超快磁化动态,其不同的点间分离在30nm和390nm之间。从频率频率值和频谱中模式的突然变化识别不同集体制度之间的转变。通过各种自旋波模式的频率和模拟模式轮廓的频率的偏置场变化进一步支持这一点。后者清楚地展示了不同集体制度中阵列中集体模式的空间分布的性质的变化。对于各种应用的六边形阵列中的六边形阵列中的点间分离的正确值,观察结果是必不可少的。

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  • 来源
    《RSC Advances》 |2016年第111期|共7页
  • 作者单位

    SN Bose Natl Ctr Basic Sci Dept Condensed Matter Phys &

    Mat Sci Block JD Sect 3 Kolkata 700106 India;

    SN Bose Natl Ctr Basic Sci Dept Condensed Matter Phys &

    Mat Sci Block JD Sect 3 Kolkata 700106 India;

    SN Bose Natl Ctr Basic Sci Dept Condensed Matter Phys &

    Mat Sci Block JD Sect 3 Kolkata 700106 India;

    Univ Tokyo Inst Solid State Phys 5 1 5 Kashiwanoha Kashiwa Chiba 2778581 Japan;

    SN Bose Natl Ctr Basic Sci Dept Condensed Matter Phys &

    Mat Sci Block JD Sect 3 Kolkata 700106 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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