Department of Chemical and Biomolecular Engineering, University of Pennsylvania , Philadelphia, Pennsylvania 19104, United States.
ACS Nano. 2016 Jun 28;10(6):6338-44. doi: 10.1021/acsnano.6b02660. Epub 2016 May 31.
Bijels are a class of soft materials with potential for application in diverse areas including healthcare, food, energy, and reaction engineering due to their unique structural, mechanical, and transport properties. To realize their potential, means to fabricate, characterize, and manipulate bijel mechanics are needed. We recently developed a method based on solvent transfer-induced phase separation (STRIPS) that enables continuous fabrication of hierarchically structured bijel fibers from a broad array of constituent fluids and nanoparticles using a microfluidic platform. Here, we introduce an in situ technique to characterize bijel fiber mechanics at initial and final stages of the formation process within a microfluidics device. By manipulation of the hydrodynamic stresses applied to the fiber, the fiber is placed under tension until it breaks into segments. Analysis of the stress field allows fracture strength to be inferred; fracture strengths can be as high as several thousand Pa, depending on nanoparticle content. These findings broaden the potential for the use of STRIPS bijels in applications with different mechanical demands. Moreover, our in situ mechanical characterization method could potentially enable determination of properties of other soft fibrous materials made of hydrogels, capillary suspensions, colloidal gels, or high internal phase emulsions.
双连续相乳液凝胶是一类软物质,由于其独特的结构、力学和输运性能,在医疗保健、食品、能源和反应工程等多个领域具有应用潜力。为了实现其潜力,需要开发制备、表征和操纵双连续相乳液凝胶力学性能的方法。我们最近开发了一种基于溶剂转移诱导相分离(STRIPS)的方法,该方法使用微流控平台,可从广泛的组成流体和纳米颗粒中连续制备具有层次结构的双连续相乳液凝胶纤维。在这里,我们介绍了一种原位技术,可在微流控装置内的双连续相乳液凝胶形成过程的初始和最终阶段对其纤维力学性能进行表征。通过对纤维施加的流体动力应力的操控,纤维被置于张力下,直到它断裂成若干段。对该应力场进行分析,可以推断出断裂强度;根据纳米颗粒含量的不同,断裂强度可高达几千帕。这些发现拓宽了 STRIPS 双连续相乳液凝胶在具有不同力学要求的应用中的使用潜力。此外,我们的原位力学表征方法可能可以用于确定由水凝胶、毛细悬浮液、胶体凝胶或高内相乳液制成的其他软纤维材料的性能。