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被动皮升注射实现了在微滴微流控装置中的可控结晶。

Passive Picoinjection Enables Controlled Crystallization in a Droplet Microfluidic Device.

作者信息

Li Shunbo, Zeng Muling, Gaule Thembaninkosi, McPherson Michael J, Meldrum Fiona C

机构信息

School of Chemistry, University of Leeds, Leeds, LS2 9JT, UK.

Astbury Centre for Structural Molecular Biology, School of Molecular and Cellular Biology, University of Leeds, Leeds, LS2 9JT, UK.

出版信息

Small. 2017 Nov;13(41). doi: 10.1002/smll.201702154. Epub 2017 Sep 5.

Abstract

Segmented flow microfluidic devices offer an attractive means of studying crystallization processes. However, while they are widely employed for protein crystallization, there are few examples of their use for sparingly soluble compounds due to problems with rapid device fouling and irreproducibility over longer run-times. This article presents a microfluidic device which overcomes these issues, as this is constructed around a novel design of "picoinjector" that facilitates direct injection into flowing droplets. Exploiting a Venturi junction to reduce the pressure within the droplet, it is shown that passive injection of solution from a side-capillary can be achieved in the absence of an applied electric field. The operation of this device is demonstrated for calcium carbonate, where highly reproducible results are obtained over long run-times at high supersaturations. This compares with conventional devices that use a Y-junction to achieve solution loading, where in-channel precipitation of calcium carbonate occurs even at low supersaturations. This work not only opens the door to the use of microfluidics to study the crystallization of low solubility compounds, but the simple design of a passive picoinjector will find wide utility in areas including multistep reactions and investigation of reaction dynamics.

摘要

分段流动微流控装置为研究结晶过程提供了一种有吸引力的方法。然而,尽管它们被广泛用于蛋白质结晶,但由于装置快速结垢以及在较长运行时间内缺乏可重复性等问题,很少有将其用于难溶性化合物的例子。本文介绍了一种克服这些问题的微流控装置,该装置围绕一种新型“皮升注射器”设计构建,便于直接注入流动的液滴中。利用文丘里结来降低液滴内的压力,结果表明在没有施加电场的情况下,可以从侧毛细管实现溶液的被动注入。该装置对碳酸钙的操作得到了演示,在高过饱和度下长时间运行可获得高度可重复的结果。这与使用Y形结实现溶液加载的传统装置形成对比,在传统装置中,即使在低过饱和度下也会发生碳酸钙的通道内沉淀。这项工作不仅为利用微流控技术研究低溶解度化合物的结晶打开了大门,而且这种被动皮升注射器的简单设计将在包括多步反应和反应动力学研究等领域得到广泛应用。

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