Hydrogel-based microdevices

Y. Yang
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Abstract

Summary form only given. This talk presents two hydrogel-based devices: a microgripper that can be wirelessly manipulated using magnetic fields, and a passive inertial switch using MWCNT-hydrogel composite integrated with an inductor/capacitor (L-C) resonator. The proposed microgripper can move freely in liquids when driven by direct current (dc) magnetic fields, and perform a gripping motion by using alternating current (ac) magnetic fields. The device is fabricated from a biocompatible hydrogel material that can be employed for intravascular applications. The actuation mechanism for gripping motions is realized by controlling the exposure dose on the hydrogel composite during the lithography process. The preliminary characterization of the device is also presented. The measurement results show that the gripping motion reached a full stroke at approximately 38 oC. By dispersing multiwall carbon nanotubes (MWCNT) into the material, the overall response time of the gripping motion decreases by approximately 2-fold. Device manipulations such as the gripping motion, translational motion, and rotational motion are also successfully demonstrated on a polyvinyl chloride (PVC) tube and in a polydimethylsiloxane (PDMS) microfluidic channel. The passive inertial switch consists of a PDMS micro-fluidic chip containing MWCNT-hydrogel composite and water droplet, and a glass substrate with a capacitor plate and an inductor coil. When the acceleration exceeds the designed threshold-level, the water passes through the channel to the hydrogel cavity. The hydrogel swells and changes the capacitance of the integrated L-C resonator, which in turn changes the resonant frequency that can be remotely detected. Each sensor unit does not require on-board power and circuitry for operation, so the proposed device is disposable, and is suitable for low-cost applications. All PDMS structures were fabricated using soft lithography. The L-C resonator was fabricated using a lift-off process to pattern metal layers on a glass substrate. The threshold g-values, which differ for various applications, were strongly affected by the channel widths. The phase-dip measurement shows that the resonant frequencies shift from 164 MHz to approximately 148 MHz when the device is activated by acceleration.
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Hydrogel-based微器件
只提供摘要形式。本次演讲介绍了两种基于水凝胶的器件:一种可以使用磁场无线操作的微夹持器,以及一种使用mwcnt -水凝胶复合材料集成电感/电容(L-C)谐振器的被动惯性开关。该微夹持器在直流磁场驱动下可以在液体中自由移动,在交流磁场驱动下可以进行夹持运动。该装置由可用于血管内应用的生物相容性水凝胶材料制成。在光刻过程中,通过控制水凝胶复合材料的暴露剂量来实现夹持运动的驱动机构。并对该装置进行了初步表征。测量结果表明,在约38℃时,夹持运动达到全行程。通过将多壁碳纳米管(MWCNT)分散到材料中,夹持运动的总体响应时间减少了大约2倍。在聚氯乙烯(PVC)管和聚二甲基硅氧烷(PDMS)微流控通道上成功地演示了诸如抓握运动,平移运动和旋转运动等设备操作。该被动惯性开关由含有mwcnt -水凝胶复合材料和水滴的PDMS微流控芯片和带有电容板和电感线圈的玻璃基板组成。当加速度超过设计阈值水平时,水通过通道进入水凝胶腔。水凝胶膨胀并改变集成L-C谐振器的电容,从而改变可远程检测的谐振频率。每个传感器单元不需要板载电源和电路进行操作,因此所提出的设备是一次性的,适合低成本应用。所有PDMS结构均采用软光刻技术制备。L-C谐振器是用一种升降工艺在玻璃基板上制造金属层的。不同应用的阈值g值受到通道宽度的强烈影响。相位倾斜测量表明,当器件被加速激活时,谐振频率从164 MHz移动到约148 MHz。
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