Single and hybrid electromagnetic absorbing coatings on polyacrylonitrile precursor to motivate the microwave pre-oxidation

Polymer Degradation and Stability - Tập 158 - Trang 64-71 - 2018
Tienah H.H. Elagib1,2, Elwathig A.M. Hassan1,2, Cheng Fan1, Keqing Han1, Muhuo Yu1
1State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China
2University of Gezira, Faculty of Industrial Engineering, Sudan

Tài liệu tham khảo

Ko, 1991, The influence of pyrolysis on physical properties and microstructure of modified PAN fibers during carbonization, J. Appl. Polym. Sci., 43, 589, 10.1002/app.1991.070430321 Biedunkiewicz, 2011, Pyrolysis and oxidation of PAN in dry air. Thermoanalytical methods, Mater. Sci., 17, 38 Paiva, 2003, UV stabilization route for melt-processible PAN-based carbon fibers, Carbon, 41, 1399, 10.1016/S0008-6223(03)00041-1 Liu, 2016, Stabilization kinetics of gel spun polyacrylonitrile/lignin blend fiber, Carbon, 101, 382, 10.1016/j.carbon.2016.01.096 Sung, 2002, Application of a high magnetic field in the carbonization process to increase the strength of carbon fibers, Carbon, 40, 2013, 10.1016/S0008-6223(02)00059-3 Liu, 2014, Radiation oxidation and subsequent thermal curing of polyacrylonitrile fiber, Radiat. Phys. Chem., 94, 9, 10.1016/j.radphyschem.2013.06.015 Şahin, 2014, High strength micron size carbon fibers from polyacrylonitrile–carbon nanotube precursors, Carbon, 77, 442, 10.1016/j.carbon.2014.05.049 Kim, 2015, Continuous and rapid stabilization of polyacrylonitrile fiber bundles assisted by atmospheric pressure plasma for fabricating large-tow carbon fibers, Carbon, 94, 412, 10.1016/j.carbon.2015.07.012 Naskar, 2005, UV assisted stabilization routes for carbon fiber precursors produced from melt-processible polyacrylonitrile terpolymer, Carbon, 43, 1065, 10.1016/j.carbon.2004.11.047 Obermayer, 2009, Microwave chemistry in silicon carbide reaction vials: separating thermal from nonthermal effects, Angew. Chem., 121, 8471, 10.1002/ange.200904185 Liu, 2018, Study on the oxidative stabilization of polyacrylonitrile fibers by microwave heating, Polym. Degrad. Stab., 150, 86, 10.1016/j.polymdegradstab.2018.02.017 Zhang, 2018, Comparison of microwave and conventional heating methods for oxidative stabilization of polyacrylonitrile fibers at different holding time and heating rate, Ceram. Int., 44, 14377, 10.1016/j.ceramint.2018.05.047 Ting, 2016, Effect of silicon carbide dispersion on the microwave absorbing properties of silicon carbide-epoxy composites in 2–40 GHz, J. Polym. Res., 23, 82, 10.1007/s10965-016-0974-9 Yusof, 2005, Microwave and reflection properties of palm shell carbon-polyester conductive composite absorber, J. Teknol., 42, 59 Dishovsky, 2000, On the correlation between electromagnetic waves absorption and electrical conductivity of carbon black filled polyethylenes, Mater. Res. Bull., 35, 403, 10.1016/S0025-5408(00)00230-0 Elagib, 2018, Microwave pre-oxidation for polyacrylonitrile precursor coated with nano-carbon black, Polym. Eng. Sci. Liu, 2017, Electromagnetic wave absorption of silicon carbide based materials, RSC Adv., 7, 595, 10.1039/C6RA25142K Xie, 2012, Microwave absorption properties of in situ grown CNTs/SiC composites, J. Alloy. Comp., 520, 295, 10.1016/j.jallcom.2012.01.050 Baskey, 2017, Investigation on the dielectric properties of exfoliated graphite-silicon carbide nanocomposites and their absorbing capability for the microwave radiation, IEEE Trans. Nanotechnol., 16, 453, 10.1109/TNANO.2017.2682121 Suzuki, 1993, Synthesis of silicon carbide–silicon nitride composite ultrafine particles using a carbon dioxide laser, J. Am. Ceram. Soc., 76, 1195, 10.1111/j.1151-2916.1993.tb03740.x Donglin, 2002, Microwave permittivity of nano SiC (N) composite powder and Nano SiC powder and interaction mechanism with microwave, J. Northwest. Polytech. Univ., 2, 000 Ge, 2002, Study on property improvement of SiC wave absorbers, J. Funct. Mater. Devices, 8, 263 Liu, 2011, Absorption properties of carbon black/silicon carbide microwave absorbers, Composites Part B, 42, 326, 10.1016/j.compositesb.2010.11.009 Karbownik, 2015, Effect of doping polyacrylonitrile fibers on their structural and mechanical properties, Polymers, 75, 97, 10.1016/j.polymer.2015.08.015 Lee, 2012, Structural evolution of polyacrylonitrile fibers in stabilization and carbonization, Adv. Chem. Eng. Sci., 2, 275, 10.4236/aces.2012.22032 Fu, 2015, Structural evolution of poly (acrylonitrile-co-dimethyl itaconate) copolymer during thermal oxidative stabilization, Polym. Adv. Technol., 26, 322, 10.1002/pat.3455 Karacan, 2012, An investigation on structure characterization of thermally stabilized polyacrylonitrile precursor fibers pretreated with guanidine carbonate prior to carbonization, Polym. Eng. Sci., 52, 937, 10.1002/pen.22160 Zhao, 2015, The effect of γ-ray irradiation on the microstructure and thermal properties of polyacrylonitrile fibers, RSC Adv., 5, 23508, 10.1039/C5RA01139F Fei, 2015, Effect of hydrothermal modified carbon fiber through Diels–Alder reaction and its reinforced phenolic composites, RSC Adv., 5, 64450, 10.1039/C5RA09798C Liu, 2015, Influence of air circulation on the structure and properties of melt-spun PAN precursor fibers during thermal oxidation, RSC Adv., 5, 37669, 10.1039/C5RA00476D Dalton, 1999, Thermal stabilization of polyacrylonitrile fibres, Polymers, 40, 5531, 10.1016/S0032-3861(98)00778-2 Kong, 2014, PAN fiber diameter effect on the structure of PAN-based carbon fibers, Fibers Polym., 15, 2480, 10.1007/s12221-014-2480-1 Wang, 2014, Structural identification of polyacrylonitrile during thermal treatment by selective 13C labeling and solid-state 13C NMR spectroscopy, Macromolecules, 47, 3901, 10.1021/ma500727n Zhao, 2016, New understanding on the reaction pathways of the polyacrylonitrile copolymer fiber pre-oxidation: online tracking by two-dimensional correlation FTIR spectroscopy, RSC Adv., 6, 4397, 10.1039/C5RA24320C Xue, 2013, Correlative study of critical reactions in polyacrylonitrile based carbon fiber precursors during thermal-oxidative stabilization, Polym. Degrad. Stab., 98, 219, 10.1016/j.polymdegradstab.2012.10.018 Karacan, 2012, The role of thermal stabilization on the structure and mechanical properties of polyacrylonitrile precursor fibers, Fibers Polym., 13, 855, 10.1007/s12221-012-0855-8 Ji, 2007, Structural evolution of polyacrylonitrile precursor fibers during preoxidation and carbonization, Polym. Bull., 59, 527, 10.1007/s00289-007-0796-3 Jing, 2007, Chemical structure evolution and mechanism during pre-carbonization of PAN-based stabilized fiber in the temperature range of 350–600 C, Polym. Degrad. Stab., 92, 1737, 10.1016/j.polymdegradstab.2007.05.020 Ju, 2013, Molecular design and pre-oxidation mechanism of acrylonitrile copolymer used as carbon fiber precursor, J. Polym. Res., 20, 318, 10.1007/s10965-013-0318-y Liu, 2012, Radiation-induced crosslinking of polyacrylonitrile fibers and the subsequent regulative effect on the preoxidation process, Radiat. Phys. Chem., 81, 622, 10.1016/j.radphyschem.2012.02.029 Karacan, 2012, The influence of thermal stabilization stage on the molecular structure of polyacrylonitrile fibers prior to the carbonization stage, Fibers Polym., 13, 295, 10.1007/s12221-012-0295-5 Karacan, 2012, A study on structural characterization of thermal stabilization stage of polyacrylonitrile fibers prior to carbonization, Fibers Polym., 13, 329, 10.1007/s12221-012-0329-z Hu, 2017, Fibrillar structure development of polyacrylonitrile fibers treated by ultrasonic etching in oxidative stabilization, Polym. Adv. Technol., 28, 1038, 10.1002/pat.4046