4.7 Article

Comparative study of the structure and microstructure of PAN-based nano- and micro-carbon fibers

期刊

CERAMICS INTERNATIONAL
卷 42, 期 10, 页码 11603-11610

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2016.04.055

关键词

PAN nanofiber; Carbon nanofiber; Structure; Microstructure; Carbon nanofibers; Carbon fibers

资金

  1. National Science Center - Poland [UMO - 2014/13/B/ST8/01195]

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The work presents results on the manufacture and comparative assessment of the structure and microstructure parameters of polyacrylonitrile polymer (PAN)-based carbon nano- and micro-fibers. Using the same polymer solution, PAN nano- and microfibers were obtained. The PAN nanofibers were obtained by electrospinning, and microfibers were spun using the conventional solution-spinning method. The PAN-based fiber precursors were annealed to 1000 degrees C, 2000 degrees C and to 2800 degrees C. Using X-ray diffraction and Raman spectroscopy, the structural and microstructural parameters of both types of carbon fibers were examined. The morphology of PAN nanofibers and carbon nanofibers (CNF) were studied by SEM. Both types of ex-PAN carbon fibers (nano and micro) have similar the c-axis spacing (d(002)) values and crystallite sizes after heat treatment to 2000 degrees C presenting turbostratic structure. HR-TEM images of low temperature CNF show uniform microstructure with the misoriented small carbon crystallites along the fiber axis. The ratio of the integrated intensities of the D and G peaks for carbon nanofibers after heat treatment at 2000 degrees C was distinctly higher in comparison to carbon microfibers (CF). After additional annealing the fibers to 2800 degrees C a better structural ordering show CNF. The crystallite sizes (L-c, L-a) in CNF were distinctly higher in comparison to the crystallites in CF. CF consist of two carbon components, whereas CNF contain three carbon components varying in structural and microstructural parameters. One of carbon phases in CNF was found to have the interlayer spacing close to graphite, i.e. 402=0.335 nm. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.

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