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Microfluidic Foaming: A Powerful Tool for Tailoring the Morphological and Permeability Properties of Sponge-like Biopolymeric Scaffolds

机译:微流体发泡:一种功能强大的工具,可调整海绵状生物聚合物支架的形态和渗透性

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Ordered porous polymeric materials can be engineered to present highly ordered pore arrays and uniform and tunable pore size. These features prompted a number of applications in tissue engineering, generation of meta materials, and separation and purification of biomolecules and cells. Designing new and efficient vistas for the generation of ordered porous materials is an active area of research. Here we investigate the potential of microfluidic foaming within a flow-focusing (FF) geometry in producing 3D regular sponge-like polymeric matrices with tailored morphological and permeability properties. The challenge in using microfluidic systems for the generation of polymeric foams is in the high viscosity of the continuous phase. We demonstrate that as the viscosity of the aqueous solution increases, the accessible range of foam bubble fraction (Phi(b)) and bubble diameter (D-b) inside the microfluidic chip tend to narrow progressively. This effect limits the accessible range of geometric properties of the resulting materials. We further show that this problem can be rationally tackled by appropriate choice of the concentration of the polymer. We demonstrate that via such optimization, the microfluidic assisted synthesis of porous materials becomes a facile and versatile tool for generation of porous materials with a wide range of pore size and pore volume. Moreover, we demonstrate that the size of interconnects among pores for a given value of the gas fraction can be tailored through the variation of surfactant concentration. This, in turn, affects the permeability of the materials, a factor of key importance in flow-through applications and in tissue engineering.
机译:可以对有序的多孔聚合物材料进行改造,使其呈现出高度有序的孔阵列以及均匀且可调的孔径。这些功能促使在组织工程,超颖材料的产生以及生物分子和细胞的分离和纯化中的许多应用。为产生有序多孔材料而设计新的,有效的远景是研究的活跃领域。在这里,我们研究了在流聚焦(FF)几何形状内微流体发泡在生产3D规则海绵状聚合物基质(具有定制的形态和渗透性)中的潜力。使用微流体系统产生聚合物泡沫的挑战在于连续相的高粘度。我们证明,随着水溶液粘度的增加,微流体芯片内部的泡沫气泡分数(Phi(b))和气泡直径(D-b)的可及范围趋于逐渐缩小。这种影响限制了所得材料的几何特性的可及范围。我们进一步表明,通过适当选择聚合物的浓度可以合理地解决该问题。我们证明了通过这种优化,多孔材料的微流体辅助合成成为用于产生具有宽范围的孔径和孔体积的多孔材料的简便且通用的工具。而且,我们证明对于给定的气体分数值,孔之间的互连尺寸可以通过改变表面活性剂浓度来调整。反过来,这会影响材料的渗透性,这是流通应用和组织工程中至关重要的因素。

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