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Cost-effective carbon fiber precursor selections of polyacrylonitrile-derived blend polymers: carbonization chemistry and structural characterizations

机译:具有成本效益的碳纤维前驱选择polyacrylonitrile-derived混合聚合物:碳化化学和结构特征

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Blending polyacrylonitrile (PAN) with plastic wastes and bio-based polymers provides a convenient and inexpensive method to realize cost-effective carbon fiber (CF) precursors. In this work, PAN-based blend precursors are investigated using ReaxFF reactive molecular dynamics simulations with respect to the formation of all-carbon rings, the evolutions of oxygen-containing and nitrogen-containing species, and the migration of carbon atoms to form turbostratic graphene. From these simulations, we identify that PAN/cellulose (CL) blend manifests the highest carbon yield and the most substantial all-carbon ring formation. This ReaxFF-based finding is confirmed by Raman and TEM experiments indicating high crystallinity for PAN/CL-derived blend CFs. We trace the pathway of gasification and carbonization of PAN/CL to elaborate the mechanism of the formation of all-carbon ring networks. We discover that the acetals of CL can catalyze the cyclization of the blend precursor, allowing for the search for CL derivatives or the other kinds of bio-based polymers with similar functionalities as alternative blends. In addition, we examine the structural characteristics using the carbon–carbon (C–C) radial distribution functions, C–C bond length distributions, and sp2 C atom ratios for the four representative precursors, i.e., PAN, oxidized PAN, PAN/nylon 6,6, and PAN/CL. Our simulation results show the most extensive all-carbon ring cluster and graphitic structure growths for PAN/CL. Therefore, we propose PAN/CL as a cost-effective alternative CF precursor, since (a) CL is naturally abundant and eco-friendly for production, (b) the blend precursor PAN/CL does not require oxidation treatment, (c) PAN/CL has a high carbon yield with substantial all-carbon ring formation, and (d) PAN/CL based CFs potentially provide a mechanical property enhancement.
机译:与塑料混合聚丙烯腈(PAN)废弃物和生物聚合物提供了一个方便和便宜的方法来实现具有成本效益的碳纤维(CF)前体。这项工作,聚丙烯腈基混合前兆调查使用ReaxFF活性分子动力学模拟的全碳环的形成、演进的含氧和氮含量物种和碳原子的迁移形成turbostratic石墨烯。模拟,我们发现锅/纤维素(CL)混合碳产量和最高体现最大量的全碳环的形成。ReaxFF-based发现是由拉曼和确认透射电镜实验表明高结晶度锅/ CL-derived CFs。气化和PAN / CL碳化精心设计的形成机制全碳环网络。缩醛的CL可以催化的环化混合的前兆,寻找CL衍生品或其他的生物聚合物具有类似的功能选择混合。结构特点使用碳碳(碳碳)的径向分布函数、碳碳键的长度分布和sp2C原子比例的四个代表前兆,即锅、氧化锅锅/尼龙6、6和PAN / CL。集群和最广泛的全碳环石墨结构增生锅/ CL。因此,我们建议锅/ CL划算替代CF的前兆,因为(a) CL自然丰富的和环保的生产,(b)的混合前体锅/ CL不需要氧化处理,(c)锅/ CL a高碳产量与大量的全碳成环和(d)锅/ CL CFs可能提供一种力学性能增强。

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