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A 3-D NanoMagnetoElectrokinetic model for ultra-high precision assembly of ferromagnetic NWs using magnetic-field assisted dielectrophoresis

机译:使用磁场辅助介电电泳的铁磁NWS超高精度组装的3-D纳米磁体电动模型

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This report presents a three-dimensional (3-D) magnetoelectrokinetic model to investigate a new approach to magnetic-field assisted dielectrophoresis for ultra-high precision and parallel assembly of ferromagnetic Ni nanowires (NWs) on silicon chips. The underlying assembly methodology relies on a combination of electric and magnetic fields to manipulate single nanowires from a colloidal suspension and yield their assembly on top of electrodes with better than 25 nm precision. The electric fields and the resultant dielectrophoretic forces are generated through the use of patterned gold nanoelectrodes, and deliver long-range forces that attract NWs from farther regions of the workspace and bring them in proximity to the nanoelectrodes. Next, magnetic-fields generated by cobalt magnets, which are stacked on top of the gold nanoelectrodes at their center and pre-magnetized using external magnetic fields, deliver short range forces to capture the nanowires precisely on top of the nanomagnets. The 3-D NanoMagnetoElectrokinetic model, which is built using a finite element code in COMSOL software and with further computations in MATLAB, computes the trajectory and final deposition location as well as orientation for all possible starting locations of a Ni NW within the assembly workspace. The analysis reveals that magnetic-field assisted dielectrophoresis achieves ultra-high precision assembly of NWs on top of the cobalt nanomagnets from a 42% larger workspace volume as compared to pure dielectrophoresis and thereby, establishes the benefits of adding magnetic fields to the assembly workspace. Furthermore, this approach is combined with a strategy to confine the suspension within the reservoir that contains a high density of favorable NW starting locations to deliver high assembly yields for landing NWs on top of contacts that are only twice as wide as the NWs.
机译:该报告介绍了一种三维(3-D)磁体电动模型,用于研究硅芯片上的超高精度和并联组装的磁场辅助介电泳的新方法。底层组装方法依赖于电场的组合,以操纵来自胶体悬架的单纳米线,并在电极顶部产生优于25nm精度的电极顶部。通过使用图案化的金纳米电极产生电场和所得的介电泳力,并递送从工作空间的更远区域吸引NWS的远程力,并使它们靠近纳米电极。接下来,由钴磁铁产生的磁场,其堆叠在其中心的金纳米电极顶部并使用外部磁场预磁化,从而使短距离力能够精确地捕获纳米线。使用COMSOL软件中的有限元码和MATLAB中的进一步计算建造的3-D纳米磁体电动模型计算轨迹和最终沉积位置以及组装工作空间内NI NW的所有可能启动位置的方向。该分析表明,与纯介电流量相比,磁场辅助介电电泳从42%较大的工作空间体积达到钴纳米磁石顶部的超高精度组装。从而建立将磁场添加到装配工作空间的益处。此外,这种方法与策略结合在储存器内限制储存器内的悬浮液,该液体限制含有高密度的有利NW起始位置,以提供高组装的产量,用于在触点顶部上的触点上的圆点的顶部,这些产量仅为NWS的宽度的两倍。

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