Suppr超能文献

按需控制微流 via 毛细管调谐电磁阀微阀吸力。

On-demand control of microfluidic flow via capillary-tuned solenoid microvalve suction.

机构信息

Single-Cell Center, CAS Key Laboratory of Biofuels and Shandong Key Laboratory of Energy Genetics, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao, China.

出版信息

Lab Chip. 2014 Dec 21;14(24):4599-603. doi: 10.1039/c4lc00833b. Epub 2014 Sep 18.

Abstract

A simple, low-cost and on-demand microfluidic flow controlling platform was developed based on a unique capillary-tuned solenoid microvalve suction effect without any outer pressure source. The suction effect was innovatively employed as a stable and controllable driving force for the manipulation of the microfluidic system by connecting a piece of capillary between the microvalve and the microfluidic chip, which caused significant hydrodynamic resistance differences among the solenoid valve ports and changed the flowing mode inside the valve. The volume of sucked liquid could be controlled from microliters even down to picoliters either by decreasing the valve energized duration (from a maximum energized duration to the valve response time of 20 ms) or by increasing the inserted capillary length (i.e., its hydrodynamic resistance). Several important microfluidic unit operations such as cell/droplet sorting and on-demand size-controllable droplet generation have been demonstrated on the developed platform and both simulations and experiments confirmed that this platform has good controllability and stability.

摘要

我们基于独特的毛细管调谐电磁阀微阀抽吸效应,无需外部压力源,开发了一种简单、低成本且按需的微流控流量控制平台。我们创新性地利用抽吸效应作为一种稳定可控的驱动力,通过在微阀和微流控芯片之间连接一段毛细管,来操纵微流控系统,这导致电磁阀端口之间产生显著的流体动力阻力差异,并改变了阀内的流动模式。通过减少阀激励持续时间(从最大激励持续时间到阀响应时间 20 毫秒)或增加插入毛细管的长度(即其流体动力阻力),可将吸入液体的体积从微升到皮升进行控制。我们已经在开发的平台上演示了细胞/液滴分选和按需大小可控液滴生成等几个重要的微流控单元操作,模拟和实验均证实该平台具有良好的可控性和稳定性。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验