Chaurasia Ankur Shubhlal, Sajjadi Shahriar
ESPCI Paris, 10 Rue Vauquelin, 75231, Paris cedex 05, Paris, France.
Lab Chip. 2019 Feb 26;19(5):851-863. doi: 10.1039/c8lc01081a.
A novel buoyancy-assisted vertical microfluidic setup has been developed to fabricate a new class of transformable bubble-filled hydrogel microfibers. A co-axial flow of an aqueous sodium-alginate solution enveloping an air phase was injected into a quiescent aqueous CaCl2 solution, through a vertically-oriented co-axial glass-capillary setup. This induced instantaneous gelation and produced bubble-filled calcium-alginate fibers. The surface-morphology of the resulting fibers was controlled from smooth to wavy by slowing down the gelation kinetics. The advantage of the buoyancy force acting on the fibers by the trapped air bubbles was taken not only to shape the fibers, but to transform them into several other novel hydrogel structures, such as water-filled segmented fibers, beaded microfibers, and threaded capsules. The ultimate transformability was demonstrated by the fibers being allowed to elongate and then undergo controlled destruction to produce uniform anisotropic micro-particles with a wide range of sizes and shapes from frustums to barrel and cylindrical types.
一种新型的浮力辅助垂直微流体装置已被开发出来,用于制造一类新型的可变形的气泡填充水凝胶微纤维。通过垂直定向的同轴玻璃毛细管装置,将包裹着空气相的海藻酸钠水溶液的同轴流注入静态的氯化钙水溶液中。这引发了瞬时凝胶化,并产生了气泡填充的海藻酸钙纤维。通过减缓凝胶化动力学,可将所得纤维的表面形态从光滑控制为波浪状。利用被困气泡作用于纤维上的浮力的优势,不仅可以使纤维成型,还可以将它们转变为其他几种新型水凝胶结构,如水填充的分段纤维、串珠状微纤维和带螺纹的胶囊。通过使纤维伸长,然后进行可控破坏,以产生从截头锥体到桶形和圆柱形等各种尺寸和形状的均匀各向异性微粒,证明了其最终的可变形性。