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迈向一种植入式低流量微型泵,其在阻塞流状态下无需动力。

Towards an Implantable, Low Flow Micropump That Uses No Power in the Blocked-Flow State.

作者信息

Johnson Dean G, Borkholder David A

机构信息

Rochester Institute of Technology, Microsystems Engineering, Rochester, NY 14623, USA.

出版信息

Micromachines (Basel). 2016 Jun 1;7(6):99. doi: 10.3390/mi7060099.

Abstract

Low flow rate micropumps play an increasingly important role in drug therapy research. Infusions to small biological structures and lab-on-a-chip applications require ultra-low flow rates and will benefit from the ability to expend no power in the blocked-flow state. Here we present a planar micropump based on gallium phase-change actuation that leverages expansion during solidification to occlude the flow channel in the off-power state. The presented four chamber peristaltic micropump was fabricated with a combination of Micro Electro Mechanical System (MEMS) techniques and additive manufacturing direct write technologies. The device is 7 mm × 13 mm × 1 mm (<100 mm³) with the flow channel and exterior coated with biocompatible Parylene-C, critical for implantable applications. Controllable pump rates from 18 to 104 nL/min were demonstrated, with 11.1 ± 0.35 nL pumped per actuation at an efficiency of 11 mJ/nL. The normally-closed state of the gallium actuator prevents flow and diffusion between the pump and the biological system or lab-on-a-chip, without consuming power. This is especially important for implanted applications with periodic drug delivery regimens.

摘要

低流速微泵在药物治疗研究中发挥着越来越重要的作用。向小型生物结构的输注以及芯片实验室应用需要超低流速,并且将受益于在阻塞流状态下不消耗功率的能力。在此,我们展示了一种基于镓相变驱动的平面微泵,该微泵利用凝固过程中的膨胀在断电状态下阻塞流道。所展示的四腔蠕动微泵是采用微机电系统(MEMS)技术和增材制造直接写入技术相结合制造而成的。该装置尺寸为7毫米×13毫米×1毫米(<100立方毫米),流道和外部涂有生物相容性聚对二甲苯-C,这对于可植入应用至关重要。已证明可控泵速为18至104纳升/分钟,每次驱动泵送11.1±0.35纳升,效率为11毫焦/纳升。镓致动器的常闭状态可防止泵与生物系统或芯片实验室之间的流动和扩散,且不消耗功率。这对于采用周期性给药方案的植入应用尤为重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a856/6189832/e84d46be2ec5/micromachines-07-00099-g010.jpg

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