Institute of Fundamental Technological Research, Lab. Polymers & Biomaterials, Polish Academy of Sciences, Pawinskiego 5b St., 02-106, Warsaw, Poland.
Institute of Fundamental Technological Research, Lab. Polymers & Biomaterials, Polish Academy of Sciences, Pawinskiego 5b St., 02-106, Warsaw, Poland.
Micron. 2021 Jun;145:103066. doi: 10.1016/j.micron.2021.103066. Epub 2021 Apr 1.
This research work is aimed at studying the effect of ultrasounds on the effectiveness of fiber fragmentation by taking into account the type of sonication medium, processing time, and various PLLA molecular weights. Fragmentation was followed by an appropriate filtration in order to decrease fibers length distribution. It was evidenced by fiber length determination using SEM that the fibers are shortened after ultrasonic treatment, and the effectiveness of shortening depends on the two out of three investigated parameters, mostly on the sonication medium, and processing time. The gel permeation chromatography (GPC) confirmed that such ultrasonic treatment does not change the polymers' molecular weight. Our results allowed to optimize the ultrasonic fragmentation procedure of electrospun fibers while preliminary viscosity measurements of fibers loaded into hydrogel confirmed their potential in further use as fillers for injectable hydrogels for regenerative medicine applications.
本研究旨在研究超声对纤维碎片化效果的影响,考虑到超声介质的类型、处理时间和各种 PLLA 分子量。碎片化后进行适当的过滤,以降低纤维长度分布。通过 SEM 测定纤维长度证实,超声处理后纤维变短,缩短效果取决于三个参数中的两个,主要取决于超声介质和处理时间。凝胶渗透色谱(GPC)证实,这种超声处理不会改变聚合物的分子量。我们的结果允许优化静电纺纤维的超声碎片化程序,而初步测量纤维在水凝胶中的负载的粘度证实了它们在再生医学应用的可注射水凝胶中的填充剂的潜在用途。