微流控芯片中光响应水凝胶微阀的制造方法及性能

Soft science Pub Date : 2022-01-01 DOI:10.20517/ss.2022.03
Jingwen Pan, Kehan Chen, Wenqiang Zhang, Lin Feng, Deyuan Zhang
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引用次数: 1

摘要

微流控技术在小型芯片上复杂的微流控操作方面具有潜在的优势。然而,将微阀与复杂的流道结构集成是困难的,这限制了微流体系统的小型化及其便携式应用。光响应水凝胶(LRH)材料在激光照射下能够快速改变体积,可用于制备柔性微阀,实现微流体的集成控制。提出了一种在微流控芯片上制作LRH微阀的简单方法。微球作为微阀的控制元件,由拉脱石RD纳米粘土和氧化亚铁(Fe3O4)纳米颗粒改性的LRH通过t型流道制备。所述微阀装配在具有常闭循环通道的微流控芯片上。微阀的开启/关闭性能由光子晶体材料的颜色变化来表示。结果表明:激光照射2s后,LRH微球收缩,流道打开;激光停止18s后,阀芯膨胀,流道关闭。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication method and performance of a light-responsive hydrogel microvalve in a microfluidic chip
Microfluidic technology has potential advantages in the complex manipulation of microfluidics on small-sized chips. However, it is difficult to integrate microvalves with complex flow channel structures, and this has limited the miniaturization of microfluidic systems and their portable applications. Light-responsive hydrogel (LRH) materials can rapidly change their volume under laser irradiation and can be used to prepare flexible microvalves to realize the integrated control of microfluidics. A simple fabrication method for an LRH microvalve on a microfluidic chip is proposed. The microspheres, as control elements of the microvalve based on an LRH modified with Laponite RD nanoclay and ferriferous oxide (Fe3O4) nanoparticles, are prepared through a T-shaped flow channel. The microvalve is assembled on the microfluidic chip with a normally closed circulation channel. The open/close performance of the microvalve is represented by the color change of the photonic crystal material. The results show that the LRH microspheres shrink and the flow channel opens after laser irradiation for 2 s. After stopping the laser at 18 s, the valve core swells and the flow channel closes.
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CiteScore
3.10
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