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Microfluidic platform for reproducible self-assembly of chemically communicating droplet networks with predesigned number and type of the communicating compartments

机译:具有预先设计数量和类型的连通室的化学连通液滴网络可重现自组装的微流体平台

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We report a microfluidic system for individually tailored generation and incubation of core-shell liquid structures with multiple cores that chemically communicate with each other via lipid membranes. We encapsulate an oscillating reaction-diffusion Belousov-Zhabotinsky (BZ) medium inside the aqueous droplets and study the propagation of chemical wave-fronts through the membranes. We further encapsulate the sets of interconnected BZ-droplets inside oil-lipid shells in order to i) chemically isolate the structures and ii) confine them via tunable capillary forces which leads to self-assembly of predesigned topologies. We observe that doublets (pairs) of droplets encapsulated in the shell exhibit oscillation patterns that evolve in time. We collect statistical data from tens of doublets all created under precisely controlled, almost identical conditions from which we conclude that the different types of transitions between the patterns depend on the relative volumes of the droplets within a chemically coupled pair. With this we show that the volume of the compartment is an important control parameter in designing chemical networks, a feature previously appreciated only by theory. Our system not only allows for new insights into the dynamics of geometrically complex and interacting chemical systems but is also suitable for generating autonomous chemically interconnected microstructures with possible future use, e.g., as smart biosensors or drug-release capsules.
机译:我们报告了微流控系统的个性化生成和孵化的核壳液体结构与多个通过脂质膜彼此化学通讯的核心。我们将振荡反应扩散Belousov-Zhabotinsky(BZ)介质封装在水滴内部,并研究化学波前通过膜的传播。我们进一步将相互连接的BZ液滴封装在油脂壳内部,以便i)化学隔离结构,ii)通过可调节的毛细管力限制结构,从而导致预先设计的拓扑结构自组装。我们观察到,封装在壳中的液滴的双峰(成对)表现出随时间变化的振荡模式。我们从所有在精确控制的,几乎相同的条件下创建的几十个双峰中收集统计数据,从中我们得出结论,图案之间的过渡类型不同,取决于化学偶联对中液滴的相对体积。以此我们可以看出,隔室的体积是设计化学网络时的重要控制参数,这是以前只有理论才能理解的功能。我们的系统不仅可以让人们对几何复杂且相互作用的化学系统的动力学有了新的认识,而且还适合于生成自治的化学互连微结构,并可能在将来使用,例如用作智能生物传感器或药物释放胶囊。

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