Luo Zhiren, Zhang Xu A, Evans Benjamin Aaron, Chang Chih-Hao
Department of Mechanical and Aerospace Engineering, North Carolina State University, Raleigh, North Carolina 27695, United States.
Department of Physics, Elon University, Elon, North Carolina 27244, United States.
ACS Appl Mater Interfaces. 2020 Mar 4;12(9):11135-11143. doi: 10.1021/acsami.9b18423. Epub 2020 Feb 18.
Magnetically actuated micro/nanoscale pillars have attracted significant research interest recently because of their dynamic properties. These structures can be used for various applications, such as dry adhesion, cell manipulation, and sensors or actuators in microfluidics. Magnetically actuated structures can be fabricated by mixing magnetic particles and polymers to yield a favorable combination of magnetic permeability and mechanical compliance. However, the pillar density of demonstrated structures is relatively low, which limits the potential applications in active surface manipulation of microscale objects. Here, we demonstrate active periodic nanostructures with a pillar density of 0.25 pillar/μm, which is the highest density for magnetically actuated pillars so far. Having a structure period of 2 μm, diameter of 600 nm, and high aspect ratio of up to 11, this structure can be magnetically actuated with a displacement of up to 200 nm. The behaviors of the pillars under various cyclic actuation modes have been characterized, demonstrating that the actuation can be well controlled. This work can find potential applications in particle manipulation and tunable photonic elements.
由于其动态特性,磁驱动微纳柱最近引起了广泛的研究兴趣。这些结构可用于各种应用,如干粘附、细胞操纵以及微流体中的传感器或致动器。通过混合磁性颗粒和聚合物来制造磁驱动结构,可实现磁导率和机械柔顺性的良好结合。然而,已展示结构的柱密度相对较低,这限制了其在微尺度物体主动表面操纵方面的潜在应用。在此,我们展示了一种柱密度为0.25柱/μm的有源周期性纳米结构,这是迄今为止磁驱动柱的最高密度。该结构的周期为2μm,直径为600nm,高宽比高达11,可通过磁驱动实现高达200nm的位移。已对柱在各种循环驱动模式下的行为进行了表征,表明驱动可得到很好的控制。这项工作在粒子操纵和可调谐光子元件方面具有潜在应用。