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首页> 外文期刊>Colloids and Surfaces, A. Physicochemical and Engineering Aspects >Effect of successive electrospinning and the strength of hydrogen bond on the morphology of electrospun nylon-6 nanofibers
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Effect of successive electrospinning and the strength of hydrogen bond on the morphology of electrospun nylon-6 nanofibers

机译:连续电纺和氢键强度对电纺尼龙6纳米纤维形态的影响

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摘要

We demonstrate for the first time herein that the successive electrospinning can change the fiber morphology in the electrospun mat of the polymer at the same electrospinning parameters. Two types of fibers (nano and sub-nano size) arranged in a spider-net like structure were obtained from the single polymer nylon-6 by electrospinning. FE-SEM images of the mats at different applied voltage showed that this network consisted of thin nanofibers with diameters of about 8-29. nm and thick nanofibers with diameters of about 80-292. nm, arranged in a spider-net like structure. The successive electrospinning sufficiently decreased the diameter of the main nanofibers and hardly change the diameter of the thinner fibers. The study of FT-IR spectra and the conductivity of the different mats in acidic solution showed that the formations of spider-net structure were due to the formation of stronger hydrogen bonds between ionized oligomer/monomer and polymer molecules. The possible mechanism of hydrogen bonds formation during electrospinning was proposed. These spider-net structures with high aspect ratio were responsible to increase the mechanical strength of nylon-6 mat.
机译:我们在此首次证明连续的电纺丝可以在相同的电纺丝参数下改变聚合物电纺垫中的纤维形态。通过静电纺丝从单一聚合物尼龙6中获得了呈蜘蛛网状结构排列的两种类型的纤维(纳米级和亚纳米级尺寸)。垫在不同施加电压下的FE-SEM图像表明,该网络由直径约8-29的细纳米纤维组成。纳米和厚的纳米纤维,直径约80-292。纳米,排列成蜘蛛网状结构。连续的静电纺丝足以减小主要纳米纤维的直径,并且几乎不改变较细纤维的直径。 FT-IR光谱和酸性溶液中不同垫的电导率的研究表明,蜘蛛网结构的形成是由于离子化的低聚物/单体与聚合物分子之间形成了更强的氢键。提出了静电纺丝过程中氢键形成的可能机理。这些具有高纵横比的蜘蛛网结构负责增加尼龙6垫的机械强度。

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