Department of Materials Science and Engineering, School of Physical Science and Engineering, Beijing Jiaotong University, Beijing, 100044, China.
Department of Mathematics, School of Mechanical Engineering, Purdue University, West Lafayette, IN, 47906, USA.
Macromol Rapid Commun. 2024 Jul;45(14):e2400084. doi: 10.1002/marc.202400084. Epub 2024 May 2.
Droplet-based microfluidics-assisted fabrication of alginate microgels has extensive applications in biomaterials, biomedicines, and related fields. This approach is typically achieved by crosslinking droplets of an aqueous solution of sodium alginate with various divalent and trivalent ions, such as Ca, Ba, Sr, etc. Despite the exceptional features exhibited by bulk alginate hydrogels when using iron ions as the crosslinking reagent, including stimulus responsiveness and complex chemistry, no attention has been given to studying the fabrication of Fe-alginate microgels through droplet microfluidics. In this work, a facile method is presented for fabricating Fe-alginate microgels using single emulsion droplets as templates and an off-chip crosslinking technique to solidify the droplets. The morphologies of the resulting microgels can be systematically adjusted by manipulating different parameters such as viscosities and ionic strength of the collecting solutions. It should be noted that these resulting microgels undergo a color change from light brown to dark brown due to presumed self-oxidation of iron ions within their skeleton structure. Furthermore, these Fe-alginate microgels are functionalized by decorating them with a positively charged linear polymer via electrostatic interactions to impart them with stable fluorescent property. These functionalized Fe-alginate microgels may find potential applications in drug delivery carriers and biomimetic structures.
基于液滴的微流控辅助制备海藻酸钠微凝胶在生物材料、生物医学和相关领域有广泛的应用。这种方法通常是通过将海藻酸钠的水溶液交联成液滴,使用各种二价和三价离子,如 Ca、Ba、Sr 等。尽管使用铁离子作为交联试剂的块状海藻酸钠水凝胶具有出色的特性,包括刺激响应性和复杂的化学性质,但没有人关注通过液滴微流控技术制备 Fe-海藻酸钠微凝胶。在这项工作中,提出了一种使用单乳液液滴作为模板和片外交联技术来固化液滴的简便方法来制备 Fe-海藻酸钠微凝胶。通过操纵不同的参数,如收集溶液的粘度和离子强度,可以系统地调整所得微凝胶的形态。值得注意的是,由于骨架结构中铁离子的自氧化,这些所得的微凝胶会发生颜色从浅棕色到深棕色的变化。此外,通过静电相互作用将这些 Fe-海藻酸钠微凝胶用带正电荷的线性聚合物进行功能化,赋予它们稳定的荧光性质。这些功能化的 Fe-海藻酸钠微凝胶可能在药物输送载体和仿生结构中有潜在的应用。