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Design and fabrication of uniquely shaped thiol-ene microfibers using a two-stage hydrodynamic focusing design

机译:使用两阶段流体动力聚焦设计设计和制造形状独特的硫醇烯微纤维

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Microfluidic systems have advantages that are just starting to be realized for materials fabrication. In addition to the more common use for fabrication of particles, hydrodynamic focusing has been used to fabricate continuous polymer fibers. We have previously described such a microfluidics system which has the ability to generate fibers with controlled cross-sectional shapes locked in place by in situ photopolymerization. The previous fiber fabrication studies produced relatively simple round or ribbon shapes, demonstrated the use of a variety of polymers, and described the interaction between sheath-core flow-rate ratios used to control the fiber diameter and the impact on possible shapes. These papers documented the fact that no matter what the intended shape, higher flow-rate ratios produced rounder fibers, even in the absence of interfacial tension between the core and sheath fluids. This work describes how to fabricate the next generation of fibers predesigned to have a much more complex geometry, as exemplified by the "double anchor" shape. Critical to production of the pre-specified fibers with complex features was independent control over both the shape and the size of the fabricated microfibers using a two-stage hydrodynamic focusing system. Design and optimization of the channels was performed using finite element simulations and confocal imaging to characterize each of the two stages theoretically and experimentally. The resulting device design was then used to generate thiol-ene fibers with a unique double anchor shape. Finally, proof-of-principle functional experiments demonstrated the ability of the fibers to transport fluids and to interlock laterally.
机译:微流体系统具有的优势刚刚开始在材料制造中实现。除了用于制造颗粒的更普遍的用途外,还使用流体力学聚焦来制造连续的聚合物纤维。我们先前已经描述了这样一种微流体系统,该系统具有通过原位光聚合产生具有受控横截面形状的纤维的能力。先前的纤维制造研究产生相对简单的圆形或带状形状,证明了使用多种聚合物,并描述了用于控制纤维直径的皮芯流速比之间的相互作用以及对可能形状的影响。这些论文记录了这样一个事实,即无论预期的形状如何,更高的流量比都会产生更圆的纤维,即使在岩心和鞘液之间没有界面张力的情况下也是如此。这项工作描述了如何制造预先设计成具有更复杂几何形状的下一代纤维,例如“双锚”形状。对于生产具有复杂特征的预先指定的纤维,至关重要的是使用两级流体动力聚焦系统对所制造的微纤维的形状和尺寸进行独立控制。使用有限元模拟和共聚焦成像进行通道的设计和优化,以从理论上和实验上表征两个阶段的每个阶段。然后将得到的装置设计用于产生具有独特双锚定形状的硫醇-烯纤维。最后,原理验证功能实验证明了纤维传输流体和横向互锁的能力。

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