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Harnessing liquid-in-liquid printing and micropatterned substrates to fabricate 3-dimensional all-liquid fluidic devices

机译:利用液体中的液体印刷和微图案化的基材来制造3维全液体流体装置

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摘要

Systems comprised of immiscible liquids held in non-equilibrium shapes by the interfacial assembly and jamming of nanoparticle−polymer surfactants have significant potential to advance catalysis, chemical separations, energy storage and conversion. Spatially directing functionality within them and coupling processes in both phases remains a challenge. Here, we exploit nanoclay−polymer surfactant assemblies at an oil−water interface to produce a semi-permeable membrane between the liquids, and from them all-liquid fluidic devices with bespoke properties. Flow channels are fabricated using micropatterned 2D substrates and liquid-in-liquid 3D printing. The anionic walls of the device can be functionalized with cationic small molecules, enzymes, and colloidal nanocrystal catalysts. Multi-step chemical transformations can be conducted within the channels under flow, as can selective mass transport across the liquid−liquid interface for in-line separations. These all-liquid systems become automated using pumps, detectors, and control systems, revealing a latent ability for chemical logic and learning.
机译:由通过纳米粒子界面活性剂的界面组装和阻塞而保持不平衡形状的不混溶液体组成的系统具有极大的潜力,可以促进催化,化学分离,能量存储和转化。它们中的空间定向功能以及两个阶段的耦合过程仍然是一个挑战。在这里,我们利用油水界面处的纳米粘土聚合物表面活性剂组件在液体之间产生半渗透膜,并从中获得具有定制特性的全液体流体装置。流道是使用微图案2D基板和液中液体3D打印制成的。装置的阴离子壁可以用阳离子小分子,酶和胶体纳米晶体催化剂进行功能化。多步化学转化可以在流动的通道内进行,跨液-液界面的选择性传质也可以进行在线分离。这些全液体系统使用泵,检测器和控制系统实现了自动化,从而展现了化学逻辑和学习的潜在能力。

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