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Magnetic hydrogel nanocomposites as remote controlled microfluidic valves

机译:磁性水凝胶纳米复合材料作为遥控微流阀

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摘要

In recent years, hydrogels have attracted attention as active components in microfluidic devices. Here, we present a demonstration of remote controlled flow regulation in a microfluidic device using a hydrogel nanocomposite valve. To create the nanocomposite hydrogel, magnetic nanoparticles were dispersed in temperature-responsive N-isopropylacrylamide (NIPAAm) hydrogels. The swelling and collapse of the resultant nanocomposite can be remotely controlled by application of an alternating magnetic field (AMF). A ceramic microfluidic device with Y-junction channels was fabricated using low temperature co-fired ceramic (LTCC) technology. The nanocomposite was incorporated as a valve in one of the channels of the device. An AMF of frequency 293 kHz was then applied to the device and ON-OFF control on flow was achieved. A pressure transducer was placed at the inlet of the channel and pressure measurements were done for multiple AMF ON-OFF cycles to evaluate the reproducibility of the valve. Furthermore, the effect of the hydrogel geometry on the response time was characterized by hydrogels with different dimensions. Magnetic hydrogel nanocomposite films of different thicknesses (0.5,1, 1.5 mm) were subjected to AMF and the kinetics of collapse and recovery were studied.
机译:近年来,水凝胶作为微流体装置中的活性成分已引起关注。在这里,我们展示了使用水凝胶纳米复合阀在微流体装置中进行远程控制的流量调节的演示。为了产生纳米复合水凝胶,将磁性纳米颗粒分散在温度响应性的N-异丙基丙烯酰胺(NIPAAm)水凝胶中。所得纳米复合材料的溶胀和塌陷可通过施加交变磁场(AMF)进行远程控制。使用低温共烧陶瓷(LTCC)技术制造了具有Y型结通道的陶瓷微流体装置。将纳米复合材料作为阀并入装置的一个通道中。然后将频率为293 kHz的AMF应用于该设备,并实现了流量的ON-OFF控制。将压力传感器放置在通道的入口处,并针对多个AMF ON-OFF循环进行压力测量,以评估阀门的可重复性。此外,水凝胶几何形状对响应时间的影响通过具有不同尺寸的水凝胶来表征。对不同厚度(0.5、1、1.5 mm)的磁性水凝胶纳米复合薄膜进行AMF,研究了塌陷和恢复的动力学。

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