GSTDTAP  > 地球科学
DOI10.1038/s41586-019-1292-2
Self-coalescing flows in microfluidics for pulse-shaped delivery of reagents
Gokce, Onur1,5; Castonguay, Samuel2; Temiz, Yuksel1; Gervais, Thomas2,3,4; Delamarche, Emmanuel1
2019-06-19
发表期刊NATURE
ISSN0028-0836
EISSN1476-4687
出版年2019
卷号574期号:7777页码:228-+
文章类型Article
语种英语
国家Switzerland; Canada
英文摘要

Microfluidic systems can deliver portable point-of-care diagnostics without the need for external equipment or specialist operators, by integrating all reagents and manipulations required for a particular assay in one device(1). A key approach is to deposit picogram quantities of dried reagents in microchannels with micrometre precision using specialized inkjet plotters(2-5). This means that reagents can be stored for long periods of time and reconstituted spontaneously when adding a liquid sample. But it is challenging to carry out complex operations using multiple reagents, because shear flow enhances their dispersion and they tend to accumulate at moving liquid fronts, resulting in poor spatiotemporal control over the concentration profile of the reconstituted reagents(6). One solution is to limit the rate of release of reagents into the liquid(7-10). However, this requires the fine-tuning of different reagents, conditions and targeted operations, and cannot readily produce the complex, time-dependent multireagent concentration pulses required for sophisticated on-chip assays. Here we report and characterize a capillary flow phenomenon that we term self-coalescence, which is seen when a confined liquid with a stretched air-liquid interface is forced to 'zip' back onto itself in a microfluidic channel, thereby allowing reagent reconstitution with minimal dispersion. We provide a comprehensive framework that captures the physical underpinning of this effect. We also fabricate scalable, compact and passive microfluidic structures-'self-coalescence modules', or SCMs-that exploit and control this phenomenon in order to dissolve dried reagent deposits in aqueous solutions with precise spatiotemporal control. We show that SCMs can reconstitute multiple reagents so that they either undergo local reactions or are sequentially delivered in a flow of liquid. SCMs are easily fabricated in different materials, readily configured to enable different reagent manipulations, and readily combined with other microfluidic technologies, so should prove useful for assays, diagnostics, high-throughput screening and other technologies requiring efficient preparation and manipulation of small volumes of complex solutions.


领域地球科学 ; 气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000489784200043
WOS关键词CONTROLLED-RELEASE ; TESTS
WOS类目Multidisciplinary Sciences
WOS研究方向Science & Technology - Other Topics
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文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/203082
专题地球科学
资源环境科学
气候变化
作者单位1.IBM Res Zurich, Ruschlikon, Switzerland;
2.EPM, Dept Engn Phys, Montreal, PQ, Canada;
3.Inst Canc Montreal, Montreal, PQ, Canada;
4.CRCHUM, Montreal, PQ, Canada;
5.Univ Zurich, ETH Zurich, Inst Neuroinformat, Zurich, Switzerland
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GB/T 7714
Gokce, Onur,Castonguay, Samuel,Temiz, Yuksel,et al. Self-coalescing flows in microfluidics for pulse-shaped delivery of reagents[J]. NATURE,2019,574(7777):228-+.
APA Gokce, Onur,Castonguay, Samuel,Temiz, Yuksel,Gervais, Thomas,&Delamarche, Emmanuel.(2019).Self-coalescing flows in microfluidics for pulse-shaped delivery of reagents.NATURE,574(7777),228-+.
MLA Gokce, Onur,et al."Self-coalescing flows in microfluidics for pulse-shaped delivery of reagents".NATURE 574.7777(2019):228-+.
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