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一种用于在液-液界面处控制软膜自组装并实时监测的流变体装置。

A fluidic device for the controlled formation and real-time monitoring of soft membranes self-assembled at liquid interfaces.

机构信息

School of Engineering and Materials Science, Queen Mary University of London, London, UK.

出版信息

Sci Rep. 2018 Feb 13;8(1):2900. doi: 10.1038/s41598-018-20998-7.

Abstract

Membrane materials formed at the interface between two liquids have found applications in a large variety of technologies, from sensors to drug-delivery and catalysis. However, studying the formation of these membranes in real-time presents considerable challenges, owing to the difficulty of prescribing the location and instant of formation of the membrane, the difficulty of observing time-dependent membrane shape and thickness, and the poor reproducibility of results obtained using conventional mixing procedures. Here we report a fluidic device that facilitates characterisation of the time-dependent thickness, morphology and mass transport properties of materials self-assembled at fluid-fluid interfaces. In the proposed device the membrane forms from the controlled coalescence of two liquid menisci in a linear open channel. The linear geometry and controlled mixing of the solutions facilitate real-time visualisation, manipulation and improve reproducibility. Because of its small dimensions, the device can be used in conjunction with standard microscopy methods and reduces the required volumes of potentially expensive reagents. As an example application to tissue engineering, we use the device to characterise interfacial membranes formed by supra-molecular self-assembly of peptide-amphiphiles with either an elastin-like-protein or hyaluronic acid. The device can be adapted to study self-assembling membranes for applications that extend beyond bioengineering.

摘要

在两种液体之间的界面形成的膜材料在从传感器到药物输送和催化的各种技术中都有应用。然而,由于难以规定膜的形成位置和瞬间、难以观察随时间变化的膜形状和厚度、以及使用传统混合程序获得的结果的可重复性差,实时研究这些膜的形成具有相当大的挑战性。在这里,我们报告了一种流体装置,该装置便于对在流体-流体界面处自组装的材料的随时间变化的厚度、形态和质量传输特性进行表征。在提出的装置中,膜是通过在直线开通道中控制两个液体弯月面的聚合并从而形成的。线性几何形状和溶液的受控混合便于实时可视化、操作并提高重现性。由于其尺寸较小,该装置可以与标准显微镜方法结合使用,并减少潜在昂贵试剂的所需体积。作为组织工程的一个示例应用,我们使用该装置来表征通过超分子自组装形成的界面膜,这些超分子自组装由弹性蛋白样蛋白或透明质酸与肽两亲物组成。该装置可以进行适应性研究,以用于超越生物工程的应用的自组装膜。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55b2/5811436/def74ed7d673/41598_2018_20998_Fig1_HTML.jpg

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