4.7 Article

Accelerating the oxidative stabilization of pitch fibers and improving the physical performance of carbon fibers by modifying naphthalene-based mesophase pitch with C9 resin

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ELSEVIER
DOI: 10.1016/j.jaap.2020.105009

Keywords

Naphthalene pitch; Modified mesophase pitch; Pitch fibers; Oxidative stabilization; Pitch-based carbon fibers

Funding

  1. National Natural Science Foundation of China [52072275, U1960106]
  2. China Scholarship Council Fund [201808420114]
  3. WUST National Defence Preresearch Foundation [GF201808]

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This study found that introducing C9 resin could improve the flowability and oxidative reaction capability of naphthalene pitch, enhancing the physical properties of carbon fibers and potentially reducing production costs.
A spinnable mesophase pitch with 95 vol.% optical anisotropy and 267 degrees C softening point was prepared through co-polymerization of 95 wt.% naphthalene pitch and 5 wt.% C9 resin. The effects of introducing C9 resin on the formation, structure and properties of naphthalene-derived mesophase pitch and the oxidative stabilization of resulting pitch fibers as well as the final physical properties of carbon fibers were systematically investigated. The results suggest that C9 resin could effectively facilitate the generation and development of liquid crystals in synthetic naphthalene pitch during the heat soaking process and introduce a certain amount of methyl side chains linking in polycyclic aromatic hydrocarbon molecules, so as to reduce the melt viscosity of modified mesophase pitch and improve its flow-spinnability and oxidative reaction capability. The pre-oxidation process of the modified pitch-spun fibers could be completed ahead of 4 h at 240 degrees C in an air atmosphere, compared with unmodified pitch fibers. This shows a possibility to decrease the production cost of mesophase pitch-based carbon fibers. Although the tensile strength of 1000 degrees C carbonized fibers prepared from the modified mesophase pitch (1.23 GPa) is slightly higher than that of original carbon fibers (1.18 GPa), the axial electrical resistivity and the thermal conductivity of corresponding graphite fibers after 3000 degrees C graphitization are 2.0 mu Omega m and 677 W/(m K), respectively, which are significantly enhanced in comparison with those of original graphite fibers (3.2 mu Omega m and 473 W/(m K).

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