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生物基高性能旋转微马达,用于可单独重构的微机器阵列和微流控应用。

Biobased High-Performance Rotary Micromotors for Individually Reconfigurable Micromachine Arrays and Microfluidic Applications.

机构信息

Department of Mechanical Engineering, The University of Texas at Austin , Austin, Texas 78712, United States.

Materials Science and Engineering Program, The University of Texas at Austin , Austin, Texas 78712, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Feb 22;9(7):6144-6152. doi: 10.1021/acsami.6b13997. Epub 2017 Feb 7.

Abstract

In this work, we report an innovative type of rotary biomicromachines by using diatom frustules as integrated active components, including the assembling, operation, and performance characterization. We further investigate and demonstrate unique applications of the biomicromachines in achieving individually reconfigurable micromachine arrays and microfluidic mixing. Diatom frustules are porous cell walls of diatoms made of silica. We assembled rotary micromachines consisting of diatom frustules serving as rotors and patterned magnets serving as bearings in electric fields. Ordered arrays of micromotors can be integrated and rotated with controlled orientation and a speed up to ∼3000 rpm, one of the highest rotational speeds in biomaterial-based rotary micromachines. Moreover, by exploiting the distinct electromechanical properties of diatom frustules and metallic nanowires, we realized the first reconfigurable rotary micro/nanomachine arrays with controllability in individual motors. Finally, the diatom micromachines are successfully integrated in microfluidic channels and operated as mixers. This work demonstrated the high-performance rotary micromachines by using bioinspired diatom frustules and their applications, which are essential for low-cost bio-microelectromechanical system/nanoelectromechanical system (bio-MEMS/NEMS) devices and relevant to microfluidics.

摘要

在这项工作中,我们报告了一种新型的旋转生物微机械,它使用硅藻壳作为集成的主动组件,包括组装、操作和性能表征。我们进一步研究并展示了生物微机械在实现可单独重构的微机器阵列和微流混合方面的独特应用。硅藻壳是由硅制成的硅藻多孔细胞壁。我们组装了由硅藻壳作为转子和图案化磁铁作为电场中的轴承的旋转微机器。可以集成有序排列的微电机,并以高达 3000rpm 的控制方向和速度进行旋转,这是基于生物材料的旋转微机器中最高的旋转速度之一。此外,通过利用硅藻壳和金属纳米线的独特机电特性,我们实现了具有个体电机可控性的首个可重构旋转微/纳米机器阵列。最后,硅藻微机器成功集成在微流道中,并用作混合器。这项工作展示了使用仿生硅藻壳及其应用的高性能旋转微机器,这对于低成本的生物微机电系统/纳机电系统(bio-MEMS/NEMS)器件至关重要,并且与微流控相关。

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