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高、低结晶度电纺纤维的取向和结晶度的拉曼分析

Raman Analysis of Orientation and Crystallinity in High , Low Crystallinity Electrospun Fibers.

作者信息

Laramée Arnaud W, Pellerin Christian

机构信息

Département de chimie, Université de Montréal, Montréal, QC, Canada.

出版信息

Appl Spectrosc. 2023 Nov;77(11):1289-1299. doi: 10.1177/00037028231202791. Epub 2023 Sep 29.

Abstract

Electrospun fibers of amorphous or low-crystallinity polymers typically exhibit a low molecular orientation that can hamper their properties and application. A key stage of the electrospinning process that could be harnessed to mitigate the loss of orientation is jet rigidification, which relates closely to the solvent evaporation rate. Here, we establish quantitative Raman methods to assess the molecular orientation and crystallinity of weakly crystalline poly(2,6-dimethyl-1,4-phenylene oxide) fibers with varying diameters. Our findings demonstrate that solvent volatility can be leveraged to modulate the orientation and crystallinity through its impact on the effective glass transition temperature () of the polymer jet during the electrospinning process. Specifically, a highly volatile solvent yields a higher and more sustained orientation (median ⟨⟩ of 0.53 for diameters < 1.0 µm) because its fast evaporation rapidly increases above room temperature. This vitrification early along the jet path promotes the formation of an oriented amorphous phase and a moderate fraction of strain-induced crystals. Our data reveals that a high is a crucial parameter for reaching high orientation in amorphous or low-crystallinity polymer systems.

摘要

非晶态或低结晶度聚合物的电纺纤维通常表现出较低的分子取向度,这可能会妨碍它们的性能和应用。电纺过程中的一个关键阶段——射流硬化,与溶剂蒸发速率密切相关,可用于减轻取向度的损失。在此,我们建立了定量拉曼方法,以评估不同直径的弱结晶聚(2,6-二甲基-1,4-亚苯基氧化物)纤维的分子取向度和结晶度。我们的研究结果表明,在电纺过程中,溶剂挥发性可通过其对聚合物射流有效玻璃化转变温度()的影响来调节取向度和结晶度。具体而言,高挥发性溶剂会产生更高且更持久的取向度(直径<1.0 µm时,中位值⟨⟩为0.53),因为其快速蒸发会使高于室温的温度迅速升高。射流路径早期的这种玻璃化促进了取向非晶相和适度比例的应变诱导晶体的形成。我们的数据表明,高是在非晶态或低结晶度聚合物体系中实现高取向度的关键参数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0dd2/10604433/5aaa7dfcb149/10.1177_00037028231202791-img1.jpg

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