Low-Cost Carbon Fibre Derived from Sustainable Coal Tar Pitch and Polyacrylonitrile

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Low-Cost Carbon Fibre Derived from Sustainable Coal Tar Pitch and Polyacrylonitrile ( low-cost-carbon-fibre-derived-from-sustainable-coal-tar-pitc )

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Materials 2019, 12, 1281 14 of 14 25. Jeong, J.H.; Kim, B.-H. Electrospun porous carbon nanofibers with controllable pore sizes by boron trioxide for electrochemical capacitor electrodes. J. Taiwan Inst. Chem. Eng. 2018, 84, 179–187. [CrossRef] 26. Lai, C.-C.; Lo, C.-T. Preparation of nanostructural carbon nanofibers and their electrochemical performance for supercapacitors. Electrochim. Acta 2015, 183, 85–93. [CrossRef] 27. Faccini, M.; Borja, G.; Boerrigter, M.; Martín, D.M.; Crespiera, S.M.; Vázquez-Campos, S.; Aubouy, L.; Amantia, D. Electrospun carbon nanofiber membranes for filtration of nanoparticles from water. J. Nanomater. 2015, 2015, 247471. [CrossRef] 28. Zhang, P.; Shao, C.; Zhang, Z.; Zhang, M.; Mu, J.; Guo, Z.; Liu, Y. In situ assembly of well-dispersed Ag nanoparticles (AgNPs) on electrospun carbon nanofibers (CNFs) for catalytic reduction of 4-nitrophenol. Nanoscale 2011, 3, 3357–3363. [CrossRef] 29. Deitzel, J.M.; Kleinmeyer, J.; Harris, D.; Tan, N.C.B. The effect of processing variables on the morphology of electrospun nanofibers and textiles. Polymer 2001, 42, 261–272. [CrossRef] 30. Baumgarten, P.K. Electrostatic spinning of acrylic microfibers. J. Colloid Interface Sci. 1971, 36, 71–79. [CrossRef] 31. Fang, W.; Yang, S.; Yuan, T.-Q.; Charlton, A.; Sun, R.-C. Effects of Various Surfactants on Alkali Lignin Electrospinning Ability and Spun Fibers. Ind. Eng. Chem. Res. 2017, 56, 9551–9559. [CrossRef] 32. Morris, E.A.; Weisenberger, M.C. Solution Spinning of PAN-Based Polymers for Carbon Fiber Precursors. Polym. Precursor Deriv. Carbon Am. Chem. Soc. 2014, 1173, 189–213. 33. Zhang, D.; Karki, A.B.; Rutman, D.; Young, D.P.; Wang, A.; Cocke, D.; Ho, T.H.; Guo, Z. Electrospun polyacrylonitrile nanocomposite fibers reinforced with Fe3O4 nanoparticles: Fabrication and property analysis. Polymer 2009, 50, 4189–4198. [CrossRef] 34. Giray, D.; Balkan, T.; Dietzel, B.; Sarac, A.S. Electrochemical impedance study on nanofibers of poly(m-anthranilic acid)/polyacrylonitrile blends. Eur. Polym. J. 2013, 49, 2645–2653. [CrossRef] 35. Kriegel, C.; Kit, K.M.; McClements, D.J.; Weiss, J. Electrospinning of chitosan–poly(ethylene oxide) blend nanofibers in the presence of micellar surfactant solutions. Polymer 2009, 50, 189–200. [CrossRef] 36. Kissinger, H.E. Reaction Kinetics in Differential Thermal Analysis. Anal. Chem. 1957, 29, 1702–1706. [CrossRef] 37. Zabihi, O. Modeling of phenomenological mechanisms during thermal formation and degradation of an epoxy-based nanocomposite. Thermochim. Acta 2012, 543, 239–245. [CrossRef] 38. Mousa, F.S.; Hamid, K.; Minoo, N. Chemically Enhanced Wet-Spinning Process to Accelerate Thermal Stabilization of Polyacrylonitrile Fibers. Macromol. Mater. Eng. 2018, 303, 1700557–1700565. © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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