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首页> 外文期刊>Journal of Applied Physics >Fixed vortex domain wall propagation in FeNi/Cu multilayered nanowire arrays driven by reversible magnetization evolution
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Fixed vortex domain wall propagation in FeNi/Cu multilayered nanowire arrays driven by reversible magnetization evolution

机译:由可逆磁化演化驱动的FeNi / Cu多层纳米线阵列中固定涡旋畴壁的传播

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摘要

While studying domain wall (DW) propagation in magnetic nanowires (NWs) may pave the way for future research and technological applications in recording heads and novel sensors, no attention has been paid to the investigation of magnetic reversal modes in multilayered NWs using angular first-order reversal curve (AFORC) analysis. Here, the magnetization reversal process of uniform FeNi/Cu NW arrays with a diameter of 45 nm electrodeposited in the anodic aluminum oxide template is systematically studied by AFORC analysis for the field angle theta (0 degrees = theta = 90 degrees) and compared with the average magnetic behavior of reversal modes based on conventional hysteresis loop measurements. The FeNi segment aspect ratio is kept constant at about 5, whereas the Cu segment length (L-Cu) increases from 2.5 to 25 nm. AFORC coercivity increases continuously with increasing theta, indicating that the NWs reverse their magnetization by nucleation and propagation of vortex DW (VDW). At theta = 0 degrees, the respective hysteresis loop coercivity and magnetostatic coupling between FeNi segments along the NW length are reduced by increasing L-Cu from 2.5 to 25 nm, resulting in an enhancement in the reversible fraction of NWs from 10% to 48%. However, the VDW reversal mode is not influenced by the increase in NW reversibility as a function of theta for the different L-Cu, which arises from constant properties of the FeNi segments. The AFORC analysis of the reversal mechanism is also found to be in agreement with recent angle-dependent anisotropic magnetoresistance measurements in single multilayered NWs. Published under license by AIP Publishing.
机译:虽然研究磁纳米线(NW)中的畴壁(DW)传播可能为将来在记录头和新型传感器中的研究和技术应用铺平道路,但并未关注使用角优先法研究多层NW中磁反转模式的问题,顺序反转曲线(AFORC)分析。在这里,通过AFORC分析系统研究了阳极氧化铝模板中电沉积直径为45 nm的均匀FeNi / Cu NW阵列的磁化反转过程,并对其场角theta(0度<= theta <= 90度)进行了比较。基于常规磁滞回线测量的反转模式的平均磁性能。 FeNi链段的长宽比保持恒定在约5,而Cu链段的长度(L-Cu)从2.5纳米增加到25纳米。 AFORC矫顽力随着theta的增加而连续增加,表明NW通过涡旋DW(VDW)的形核和传播使它们的磁化强度反转。在θ= 0度时,通过将L-Cu从2.5 nm增加到25 nm,减少了沿NiW长度的FeNi段之间的各个磁滞回线矫顽力和静磁耦合,从而使NW的可逆分数从10%增加到48% 。但是,VDW反转模式不受NW可逆性的增加影响,NW可逆性是不同L-Cu的θ的函数,这是由FeNi链段的恒定特性引起的。还发现反向机理的AFORC分析与最近在单个多层NW中依赖于角度的各向异性磁阻测量结果一致。由AIP Publishing授权发布。

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  • 来源
    《Journal of Applied Physics 》 |2019年第17期| 173902.1-173902.11| 共11页
  • 作者单位

    Univ Kashan, Dept Phys, Kashan 8731751167, Iran;

    Univ Kashan, Dept Phys, Kashan 8731751167, Iran|Univ Kashan, Inst Nanosci & Nanotechnol, Kashan 8731751167, Iran;

    Univ Kashan, Inst Nanosci & Nanotechnol, Kashan 8731751167, Iran;

    Univ Kashan, Dept Phys, Kashan 8731751167, Iran|Univ Kashan, Inst Nanosci & Nanotechnol, Kashan 8731751167, Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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