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YY Study of electrospun polyacrylonitrile fibers with porous and ultrafine nanofibril structures: Effect of stabilization treatment on the resulting carbonized structure

机译:具有多孔和超细纳米纤维结构的电纺聚丙烯腈纤维的YY研究:稳定处理对所得碳化结构的影响

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Electrospun polyacrylonitrile (PAN)-based carbon nanofibers (CNFs) with high surface area have been of promising interest because of their potential for applications in various fields, especially energy devices. In this study, PAN nanofibers with porous and ultrafine nanofiber structures were prepared by electrospinning PAN/poly(vinyl pyrrolidone) (PVP) immiscible solutions and then selectively removing the PVP component from the electrospun PAN/PVP bicomponent nanofibers. The chemical reaction and microstructure of the PAN fibers with porous and ultrafine nanofibril structures in the stabilization process were investigated. The results revealed the effects of PAN fibers with porous and ultrafine nanofibril structures on the crosslinking reaction, microstructure, and morphology during the stabilization process. According to the in situ Fourier transform infrared spectroscopy results, the intermolecular and intramolecular reactions of the nitrile group for the PAN fibers with ultrafine nanofibril structures exhibited slower reaction rates than those for the neat PAN fibers during stepwise and isothermal heating. Selecting a good stabilization temperature for ultrafine PAN-crosslinked nanofibrils can enhance the surface area and carbonized structure of CNFs. The possible applications of CNFs with porous and ultrafine nanofibril structures in supercapacitors were also evaluated. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 136, 48218.
机译:具有高表面积的电纺聚丙烯腈(PAN)基碳纳米纤维(CNFS)具有很有利于兴趣的兴趣,因为它们在各个领域的应用,特别是能量装置的潜力。在本研究中,通过静电纺丝锅/聚(乙烯基吡咯烷酮)(PVP)不混溶的溶液,然后选择性地从电纺平移锅/ PVP双组分纳米纤维中选择性地除去PVP组分,制备具有多孔和超细纳米纤维结构的PAN纳米纤维。研究了在稳定过程中具有多孔的泛纤维的锅纤维的化学反应和微观结构。结果揭示了泛纤维在稳定过程中对多孔和超细纳米纤维结构对多孔和超细纳米纤维结构的影响。稳定过程中的交联反应,微观结构和形态。根据原位傅里叶变换红外光谱结果,用超细纳米纤维结构的丁基纤维的分子间和分子内反应具有比逐步和等温加热在整齐的泛纤维的反应速率较慢的反应速率。选择良好的稳定温度用于超细泛交联的纳米纤维可以增强CNF的表面积和碳化结构。还评价了CNF与多孔和超细纳米纤维结构在超级电容器中的可能应用。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019,136,48218。

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