首页> 外文会议>IEEE Magnetics Conference >2D transport of superparamagnetic microbeads on a ferromagnetic hexagonal nanolattice
【24h】

2D transport of superparamagnetic microbeads on a ferromagnetic hexagonal nanolattice

机译:2D运输铁磁六角形纳米型纳米型纳米型

获取原文

摘要

Summary form only given. Surface-functionalized superparamagnetic (SPM) beads have been widely used to detect and manipulate chemical and biological agents in lab-on-a-chip systems. Recently, it has been shown that by exploiting the stray field generated by domain walls in magnetic nanostructures, it is possible to capture and couple a SPM bead to a domain wall. To store the captured bead, the domain walls can be pinned by fabricating geometrical defects on the nanotracks. Furthermore, the position of the coupled SPM bead can be pinpointed by measuring the magnetoresistance across nanotrack sections. However, studies on such systems have so far been limited to 1D transport. In this work, we develop a novel structure to manipulate SPM beads across a substrate surface. While domain wall trajectory under a constant field has been studied, we found that by applying a bias field in the direction of a branch, the domain wall can be forced to propagate in the direction of the selected branch. Replicating the structure into a lattice of 120° V-branches similar to a honeycomb pattern, we can finally shuttle the SPM beads across a 2D surface. By changing the width and thickness of the nanowire, the pinning potential energies of different domain boundaries were investigated. To verify the simulation results, a unit cell of the hexagonal lattice was fabricated using a combination of electron beam lithography and magnetron sputtering. A V-branch fabricated to study the amount of bias field needed to force the domain wall to propagate in the intended direction is shown. Our results show that it is indeed possible to shuttle SPM beads across a 2D surface with the application of a pulsed magnetic field with varying in-plane directions.
机译:摘要表格仅给出。表面官能化的超顺磁性(SPM)珠子已被广泛用于检测和操纵实验室系统中的化学和生物药物。最近,已经表明,通过利用磁性纳米结构中的畴壁产生的杂散场,可以捕获并将SPM珠跳成畴壁。为了存储捕获的珠子,可以通过在纳米架上制造几何缺陷来固定畴壁。此外,通过在纳米波克部分跨越磁阻部分来定位耦合的SPM珠子的位置。然而,到目前为止对这些系统的研究仅限于1D运输。在这项工作中,我们开发一种新颖的结构来操纵衬底表面的SPM珠子。虽然已经研究了恒定场下的畴壁轨迹,但是通过在分支的方向上施加偏置场,可以强迫在所选分支的方向上传播畴壁。将结构复制到与蜂窝图案类似的120°V分支的晶格中,我们最终可以穿过2D表面的SPM珠子。通过改变纳米线的宽度和厚度,研究了不同畴边界的固定电位能。为了验证模拟结果,使用电子束光刻和磁控溅射的组合制造六边形晶格的单元电池。示出了制造用于研究迫使畴壁所需的偏置场的量以预期方向传播所需的偏置场的量。我们的结果表明,在施加具有不同面内方向上的脉冲磁场的应用,确实​​可以穿过2D表面的SPM珠子。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号