论文标题

新型的微流体策略,用于生产具有很高吞吐量的常规夹杂物的藻酸钠纤维

Novel microfluidic strategy for the production of sodium alginate fibers with regular inclusions at very high throughput

论文作者

Francesco, Marangon, David, Baumgartner, Carole, Planchette

论文摘要

为了满足药物或生物医学应用中对此类微观结构的需求,迫切需要在竞争性高通量时生产具有可控尺寸和组成的生物兼容的复杂微纤维的可扩展技术。在这里,我们引入了一种新的空中微流体策略,其吞吐量> 1400 mL/h(对应于每h> 17000 m纤维)。均匀直径的超细纤维具有规则的夹杂物,可能会用于将细胞封装到保护和营养环境中,或者以精心调整以个性化剂量的各种活性物质的释放。借助新开发的原型,我们测试了七种不同的液体组合并获得七种类型的纤维,它们的“干”直径在73UM和141UM之间。我们方法的原理是通过离子交联,在空气中与连续液体射流的受控碰撞产生的复杂液体结构。在构成夹杂物的水基液滴流之后,与基于藻酸盐的射流(JET 1)在空中碰撞时,生成的“滴定式滴定”化合物与第二个含有二价额叶或钙阳离子的第二射流(JET 2)接触,以启动固化。最后,通过水平旋转板收集纤维,使其干燥,即在受控条件下完全平衡,并以破裂和杨氏模量的伸长为特征。

Scalable technologies for the production of bio-compatible complex microfibers with controllable size and composition at competitively high throughput are urgently needed in order to meet the growing demand for such microstructures in pharmaceutical or biomedical applications. Here, we introduce a new in-air microfluidic strategy with throughput of > 1400 ml/h (corresponding to > 17000 m fiber per h). The microfibers of uniform diameter have regular inclusions, which can potentially be used for encapsulating cells into a protecting and nutrient environment, or for finely tuning the release of various actives at individualized doses. With the help of a newly developed prototype, we test seven different liquid combinations and obtain seven types of fibers, whose "dry" diameter range between 73um and 141um. The principle of our approach is to solidify the complex liquid structures generated by the controlled collisions of a drop stream with a continuous liquid jet, in air, via ionic crosslinking. After the stream of water-based droplets, which constitute the inclusions, collides in-air with the alginate-based jet (jet 1), the generated "drops-in-jet" compound is brought in contact with a second jet (jet 2) containing divalent strontium or calcium cations to initiate the solidification. Finally, the fibers are collected via a horizontal spinning plate, let to dry, i.e. to fully equilibrate under controlled conditions, and characterized by their elongation at break and Young's modulus.

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