Li Dan, Ouyang Gong, McCann Jesse T, Xia Younan
Department of Chemistry, University of Washington, Seattle, Washington 98195. USA.
Nano Lett. 2005 May;5(5):913-6. doi: 10.1021/nl0504235.
Electrospinning is a simple, versatile, and useful technique for fabricating nanofibers from a rich variety of functional materials. The nanofibers are usually collected as nonwoven mats, in which the fibers are randomly oriented. We have recently demonstrated that the nanofibers can be uniaxially aligned by introducing an insulating gap into the conductive collector. To elucidate the mechanism of alignment, we have systematically studied the effect of the area and geometric shape of the insulating gap on the deposition of fibers. By modeling the electrostatic forces acting on the fiber, it was established that the fibers tended to be oriented along a direction such that the net torque of electrostatic forces applied to the two ends of a discrete segment of the fiber were minimized. By varying the design of electrode pattern, it was possible to control both alignment and assembly of the electrospun nanofibers.
静电纺丝是一种简单、通用且实用的技术,可用于从多种功能材料制备纳米纤维。纳米纤维通常收集为非织造毡,其中纤维随机取向。我们最近证明,通过在导电收集器中引入绝缘间隙,可以使纳米纤维单轴排列。为了阐明排列机制,我们系统地研究了绝缘间隙的面积和几何形状对纤维沉积的影响。通过对作用在纤维上的静电力进行建模,确定纤维倾向于沿这样一个方向取向,即施加到纤维离散段两端的静电力的净扭矩最小。通过改变电极图案的设计,可以控制静电纺纳米纤维的排列和组装。