Synthesis of Poly(acrylonitrile-co-acrylic acid) for High-Strength Carbon Nanofibers

IF 4.7 2区 化学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Polymer Materials Pub Date : 2025-03-18 DOI:10.1021/acsapm.5c00315
Xin Gao, Xianfeng Wang*, Jianyong Yu, Bin Ding and Xiaohua Zhang*, 
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Abstract

Electrospun polyacrylonitrile (PAN) nanofibers are widely recognized as precursors for fabricating carbon nanofibers (CNFs), yet the limited degree of cyclization and frequent fiber breakages during stabilization hinder the mechanical performance of the resulting CNFs. This study introduces a strategy to overcome these challenges by synthesizing poly(acrylonitrile-co-acrylic acid) copolymers with controlled acrylic acid ratios. The incorporation of uniformly distributed carboxyl groups in acrylic acid units within the polymer structure enabled an ionic cyclization pathway, reducing the maximum cyclization temperature to 250 °C and achieving a cyclization degree exceeding 82%. This enhanced stabilization process yielded CNFs with highly graphitized structures with an IG/ID ratio of 3.0 and minimal fiber breakages of less than 0.1%. Notably, CNFs derived from P(AN-AA)-5% exhibited a remarkable tensile strength of 28.2 MPa, over three times greater than that of conventional PAN-derived CNFs of 8.8 MPa. This innovative approach highlights the potential of copolymer-based modifications to advance CNF fabrication, offering a pathway for improved mechanical properties and expanded application prospects.

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高强度纳米碳纤维用聚丙烯腈-共丙烯酸的合成
静电纺聚丙烯腈(PAN)纳米纤维被广泛认为是制备纳米碳纤维(CNFs)的前体,但在稳定过程中,有限的环化程度和频繁的纤维断裂阻碍了纳米碳纤维的力学性能。本研究介绍了一种通过控制丙烯酸比合成聚丙烯腈-共丙烯酸共聚物来克服这些挑战的策略。聚合物结构内丙烯酸单元中均匀分布的羧基的加入,使离子环化途径得以实现,最大环化温度降至250℃,环化度超过82%。这种增强的稳定化工艺产生了具有高度石墨化结构的CNFs,其IG/ID比为3.0,纤维断裂率小于0.1%。值得注意的是,P(AN-AA)-5%衍生的CNFs的抗拉强度达到28.2 MPa,是传统pan衍生CNFs (8.8 MPa)的3倍多。这种创新的方法突出了基于共聚物的改性在推进CNF制造方面的潜力,为改善机械性能和扩大应用前景提供了一条途径。
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来源期刊
CiteScore
7.20
自引率
6.00%
发文量
810
期刊介绍: ACS Applied Polymer Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics, and biology relevant to applications of polymers. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates fundamental knowledge in the areas of materials, engineering, physics, bioscience, polymer science and chemistry into important polymer applications. The journal is specifically interested in work that addresses relationships among structure, processing, morphology, chemistry, properties, and function as well as work that provide insights into mechanisms critical to the performance of the polymer for applications.
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