Chen Wanyu, Yang Yajiang, Rinadi Christopher, Zhou Dan, Shen Amy Q
School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.
Lab Chip. 2009 Oct 21;9(20):2947-51. doi: 10.1039/b906254h. Epub 2009 Jul 11.
Supramolecular hydrogel microspheres are hydrogel particles formed by the self-assembly of hydrogelators in water, through non-covalent interactions. In this paper, we provide a novel strategy to prepare supramolecular hydrogel microspheres with diameters ranging from 15 to 105 microns by using microfluidics. Since the gelation temperature is ca. 64 degrees C, the aqueous solution containing the hydrogelator was initially set at 70 degrees C so the liquid mixture can be pumped into the microfluidic device. The hydrogelator solution then pinches off into uniform micron size droplets at the narrow orifice of the microfluidic device. While traveling downstream in the microchannel, the self-assembly process occurs inside the droplets and the droplets solidify into microsphere gels when the temperature drops to ca. 64 degrees C and below. Optical and scanning electron microscopy (SEM) demonstrate that compact, entangled, round, cage-like aggregates of hydrogelator were formed within the supramolecular hydrogel microsphere, in contrast to loose and less compact aggregates within bulk hydrogel. Thermal analysis (DSC) indicates that supramolecular hydrogel microspheres are more thermally stable and can immobilize more water molecules, owing to the compact entangled three-dimensional network structures. This observation is of particular importance for potential drug delivery and biomaterials applications.
超分子水凝胶微球是水凝胶剂在水中通过非共价相互作用自组装形成的水凝胶颗粒。在本文中,我们提供了一种利用微流控技术制备直径范围为15至105微米的超分子水凝胶微球的新策略。由于凝胶化温度约为64℃,因此最初将含有水凝胶剂的水溶液设定为70℃,以便将液体混合物泵入微流控装置。然后,水凝胶剂溶液在微流控装置的狭窄孔口处 pinch off 成均匀的微米级液滴。当液滴在微通道中向下游移动时,自组装过程在液滴内部发生,并且当温度降至约64℃及以下时,液滴固化成微球凝胶。光学显微镜和扫描电子显微镜(SEM)表明,与本体水凝胶中松散且不太紧密的聚集体相比,在超分子水凝胶微球内形成了紧密、缠结、圆形、笼状的水凝胶剂聚集体。热分析(DSC)表明,由于紧密缠结的三维网络结构,超分子水凝胶微球具有更高的热稳定性,并且可以固定更多的水分子。这一观察结果对于潜在的药物递送和生物材料应用尤为重要。 (注:pinch off 这里可能是某个特定专业术语,原文未给出准确中文释义,按字面理解翻译)