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2
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Proc Natl Acad Sci U S A. 2013 Nov 5;110(45):18104-9. doi: 10.1073/pnas.1310254110. Epub 2013 Oct 21.
3
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Squeeze-chip: a finger-controlled microfluidic flow network device and its application to biochemical assays.压片芯片:一种手指控制的微流控流网络器件及其在生化分析中的应用。
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用于微流体操作的手动可操作片上双稳态气动微结构。

Manually operatable on-chip bistable pneumatic microstructures for microfluidic manipulations.

作者信息

Chen Arnold, Pan Tingrui

机构信息

Micro-Nano Innovations (MiNI) Laboratory, Department of Biomedical Engineering, University of California, Davis, USA.

出版信息

Lab Chip. 2014 Sep 7;14(17):3401-8. doi: 10.1039/c4lc00540f.

DOI:10.1039/c4lc00540f
PMID:25007840
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4140693/
Abstract

Bistable microvalves are of particular interest because of their distinct nature of requiring energy consumption only during the transition between the open and closed states. This characteristic can be highly advantageous in reducing the number of external inputs and the complexity of control circuitries since microfluidic devices as contemporary lab-on-a-chip platforms are transferring from research settings to low-resource environments with high integrability and a small form factor. In this paper, we first present manually operatable, on-chip bistable pneumatic microstructures (BPMs) for microfluidic manipulation. The structural design and operation of the BPM devices can be readily integrated into any pneumatically powered microfluidic network consisting of pneumatic and fluidic channels. It is mainly composed of a vacuum activation chamber (VAC) and a pressure release chamber (PRC), of which users have direct control through finger pressing to switch either to the bistable vacuum state (VS) or the atmospheric state (AS). We have integrated multiple BPM devices into a 4-to-1 microfluidic multiplexor to demonstrate on-chip digital flow switching from different sources. Furthermore, we have shown its clinical relevance in a point-of-care diagnostic chip that processes blood samples to identify the distinct blood types (A/B/O) on-chip.

摘要

双稳态微阀因其独特的性质而备受关注,即仅在从打开状态到关闭状态的转换过程中需要能量消耗。由于作为当代芯片实验室平台的微流控设备正从研究环境转移到具有高集成度和小尺寸的低资源环境中,这一特性在减少外部输入数量和控制电路复杂性方面可能具有极大优势。在本文中,我们首先展示了用于微流控操作的手动可操作的片上双稳态气动微结构(BPM)。BPM设备的结构设计和操作可以很容易地集成到任何由气动和流体通道组成的气动驱动微流控网络中。它主要由一个真空激活腔(VAC)和一个压力释放腔(PRC)组成,用户通过手指按压可以直接控制其切换到双稳态真空状态(VS)或大气状态(AS)。我们已将多个BPM设备集成到一个4选1的微流控多路复用器中,以展示片上来自不同源的数字流切换。此外,我们还展示了其在即时诊断芯片中的临床相关性,该芯片可处理血样以在芯片上识别不同的血型(A/B/O)。