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利用可溶解薄膜的离心气动阀。

Centrifugo-pneumatic valving utilizing dissolvable films.

机构信息

Biomedical Diagnostics Institute, National Centre for Sensor Research, Dublin City University, Glasnevin, Dublin 9, Ireland.

出版信息

Lab Chip. 2012 Aug 21;12(16):2894-902. doi: 10.1039/c2lc20973j. Epub 2012 Jun 13.

Abstract

In this article we introduce a novel technology that utilizes specialized water dissolvable thin films for valving in centrifugal microfluidic systems. In previous work (William Meathrel and Cathy Moritz, IVD Technologies, 2007), dissolvable films (DFs) have been assembled in laminar flow devices to form efficient sacrificial valves where DFs simply open by direct contact with liquid. Here, we build on the original DF valving scheme to leverage sophisticated, merely rotationally actuated vapour barriers and flow control for enabling comprehensive assay integration with low-complexity instrumentation on "lab-on-a-disc" platforms. The advanced sacrificial valving function is achieved by creating an inverted gas-liquid stack upstream of the DF during priming of the system. At low rotational speeds, a pocket of trapped air prevents a surface-tension stabilized liquid plug from wetting the DF membrane. However, high-speed rotation disrupts the metastable gas/liquid interface to wet the DF and thus opens the valve. By judicious choice of the radial position and geometry of the valve, the burst frequency can be tuned over a wide range of rotational speeds nearly 10 times greater than those attained by common capillary burst valves based on hydrophobic constrictions. The broad range of reproducible burst frequencies of the DF valves bears the potential for full integration and automation of comprehensive, multi-step biochemical assay protocols. In this report we demonstrate DF valving, discuss the biocompatibility of using the films, and show a potential sequential valving system including the on-demand release of on-board stored liquid reagents, fast centrifugal sedimentation and vigorous mixing; thus providing a viable basis for use in lab-on-a-disc platforms for point-of-care diagnostics and other life science applications.

摘要

本文介绍了一种新颖的技术,该技术利用专用的水溶薄膜在离心微流控系统中实现阀门功能。在之前的工作中(William Meathrel 和 Cathy Moritz,IVD Technologies,2007),水溶薄膜(DF)已被组装在层流装置中,形成高效的牺牲型阀门,其中 DF 只需通过与液体直接接触即可简单开启。在这里,我们在原始的 DF 阀控方案的基础上,利用复杂的、仅通过旋转驱动的蒸汽屏障和流量控制,在“盘上实验室”平台上实现低复杂度仪器的全面分析物集成。先进的牺牲型阀控功能是通过在系统启动时于 DF 上游创建一个反转的气-液堆叠来实现的。在低转速下,被困的空气阻止表面张力稳定的液体塞浸湿 DF 膜。然而,高速旋转破坏了亚稳气/液界面,使 DF 浸湿并打开阀门。通过明智地选择阀的径向位置和几何形状,可以在比基于疏水性限制的常见毛细管爆裂阀高近 10 倍的宽转速范围内调整爆裂频率。DF 阀的宽重复爆裂频率范围具有充分整合和自动化全面、多步骤生化分析协议的潜力。在本报告中,我们展示了 DF 阀控功能,讨论了使用薄膜的生物相容性,并展示了一个潜在的顺序阀控系统,包括按需释放板上储存的液体试剂、快速离心沉淀和剧烈混合;从而为在盘上实验室平台上用于即时诊断和其他生命科学应用提供了可行的基础。

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