具有三维图像化表面的镍硅复合结构片上高速微型机器人

M. Hagiwara, T. Kawahara, Toru Iijima, T. Masuda, Y. Yamanishi, F. Arai
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引用次数: 0

摘要

介绍了一种基于永磁体的微流控芯片驱动的高速微型机器人。通过对磁驱动微机器人的流体力进行综合分析,优化设计和制造,通过在微机器人上附加波纹形状来减小磁驱动微机器人所受的流体力。采用各向异性硅湿刻蚀和深度反应离子刻蚀的方法,在镍基微机器人上制备了最佳的镍硅复合材料。评估实验表明,该微机器人的驱动频率可达100 Hz,是原微机器人的10倍。此外,由于微型机器人被硅覆盖,具有生物相容性,因此可以应用于细胞操作而不会造成伤害。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On-chip high speed microrobot made of Ni-Si composite structure with three-dimensionally patterned surface
This paper presents the high speed microrobot actuation driven by permanent magnet in a microfluidic chip. The comprehensive analysis of fluid force, the optimum design and its fabrication was conducted to reduce the fluid force on the magnetically driven microrobot by attaching riblet shape on the microrobot. The Ni and Si composite fabrication was employed to form the optimum riblet shape on the Ni based microrobot by anisotropic Si wet etching and deep reactive ion etching. The evaluation experiments show the microrobot can actuate up to 100 Hz, which is 10 times higher than the original microrobot. In addition, since the microrobot was covered by Si, which is bio-compatible, it can be applied to cell manipulation without harm.
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