Eroğlu Ayşe Nur, Tığlı Aydın R Seda, Karakeçili Ayşe, Çalımlı Ayla
J Nanosci Nanotechnol. 2017 Jan;17(1):616-25.
In this study, Response Surface Methodology (RSM) was used to model and optimize the electrospinning parameters to obtain poly(2-hydroxylethyl methacrylate) (pHEMA) nanofibers which is challenging in terms of evaluating the optimum conditions in nanofiber production. A second order (quadratic model) polynomial function was used for correlation between electrospinning parameters (flow rate, applied voltage, polymer/ethanol concentration) and average fiber diameter. An electro-spinning set-up was used to fabricate nanofibers and scanning electron microscopy (SEM) was used to determine the morphology and the size of the nanofibers with diameter ranging from 211 nm to 1661 nm. Results concluded that the concentration of polymer solution played an important role in distribution of fiber diameter. Based on RSM, the optimum pHEMA fibers with 245±35 nm diameter were collected at 13 μL/min flow rate, 12 kV applied voltage at an ethanol:pHEMA ratio of 1.76.
在本研究中,采用响应面法(RSM)对静电纺丝参数进行建模和优化,以制备聚甲基丙烯酸2-羟乙酯(pHEMA)纳米纤维,而这在评估纳米纤维生产的最佳条件方面具有挑战性。使用二阶(二次模型)多项式函数来关联静电纺丝参数(流速、施加电压、聚合物/乙醇浓度)与平均纤维直径。采用静电纺丝装置制备纳米纤维,并使用扫描电子显微镜(SEM)来确定直径范围为211nm至1661nm的纳米纤维的形态和尺寸。结果表明,聚合物溶液的浓度在纤维直径分布中起着重要作用。基于响应面法,在流速为13μL/min、施加电压为12kV、乙醇与pHEMA的比例为1.76的条件下,收集到了直径为245±35nm的最佳pHEMA纤维。