Microwave catalytic conversion of acetylene for co-production of hydrogen and carbon nanotubes

Chemical Engineering Journal - Tập 454 - Trang 140115 - 2023
Sonit Balyan1, Changle Jiang1, Ashley Caiola1, Jianli Hu1
1Department of Chemical and Biomedical Engineering, West Virginia University, Morgantown, WV 26505, United States

Tài liệu tham khảo

Chen, 2022, Plasma pyrolysis for a sustainable hydrogen economy, Nat. Rev. Mater., 7, 333, 10.1038/s41578-022-00439-8 Kerscher, 2021, Low-carbon hydrogen production via electron beam plasma methane pyrolysis: Techno-economic analysis and carbon footprint assessment, Int. J. Hydrogen Energy, 46, 19897, 10.1016/j.ijhydene.2021.03.114 Dors, 2014, Chemical kinetics of methane pyrolysis in microwave plasma at atmospheric pressure, Plasma Chem. Plasma Process., 34, 313, 10.1007/s11090-013-9510-4 Fincke, 2002, Plasma Thermal Conversion of Methane to Acetylene, Plasma Chem. Plasma Process., 22, 105, 10.1023/A:1012944615974 Takenaka, 2004, Formation of filamentous carbons over supported Fe catalysts through methane decomposition, J. Catal., 222, 520, 10.1016/j.jcat.2003.11.017 Ermakova, 2002, Ni/SiO2 and Fe/SiO2 catalysts for production of hydrogen and filamentous carbon via methane decomposition, Catal. Today, 77, 225, 10.1016/S0920-5861(02)00248-1 Zhang, 2004, Carbon formation thresholds and catalyst deactivation during CH4 decomposition on supported Co and Ni catalysts, Catal. Letters., 95, 7, 10.1023/B:CATL.0000023714.69741.1d Parmar, 2021, Blue hydrogen and carbon nanotube production via direct catalytic decomposition of methane in fluidized bed reactor: Capture and extraction of carbon in the form of CNTs, Energy Convers. Manag., 232, 10.1016/j.enconman.2021.113893 Sánchez-Bastardo, 2021, Methane Pyrolysis for Zero-Emission Hydrogen Production: A Potential Bridge Technology from Fossil Fuels to a Renewable and Sustainable Hydrogen Economy, Ind. Eng. Chem. Res., 60, 11855, 10.1021/acs.iecr.1c01679 Wang, 2021, Catalytic decomposition of methane into hydrogen and high-value carbons: combined experimental and DFT computational study, Catal, Sci. Technol., 11, 4911 Jiang, 2022, Methane Catalytic Pyrolysis by Microwave and Thermal Heating over Carbon Nanotube-Supported Catalysts: Productivity, Kinetics, and Energy Efficiency, Ind. Eng. Chem. Res., 61, 5080, 10.1021/acs.iecr.1c05082 Khabushev, 2022, Joint effect of ethylene and toluene on carbon nanotube growth, Carbon N. Y., 189, 474, 10.1016/j.carbon.2021.12.052 Zhuo, 2018, Carbon Nanotube Production from Ethylene in CO2/N2 Environments, J. Energy Resour. Technol. Trans. ASME., 140, 1, 10.1115/1.4039328 Hiraoka, 2003, Selective synthesis of double-wall carbon nanotubes by CCVD of acetylene using zeolite supports, Chem. Phys. Lett., 382, 679, 10.1016/j.cplett.2003.10.123 Pérez-Cabero, 2003, Characterization of carbon nanotubes and carbon nanofibers prepared by catalytic decomposition of acetylene in a fluidized bed reactor, J. Catal., 215, 305, 10.1016/S0021-9517(03)00026-5 Zhong, 2009, Acetylene: A key growth precursor for single-walled carbon nanotube forests, J. Phys. Chem. C, 113, 17321, 10.1021/jp905134b Eres, 2009, Model for self-assembly of carbon nanotubes from acetylene based on real-time studies of vertically aligned growth kinetics, J. Phys. Chem. C, 113, 15484, 10.1021/jp9001127 Lyu, 2003, High-quality double-walled carbon nanotubes produced by catalytic decomposition of benzene, Chem. Mater., 15, 3951, 10.1021/cm030309s Lee, 2004, Carbon Nanotube Synthesis in Supercritical Toluene, J. Am. Chem. Soc., 126, 4951, 10.1021/ja031522s Baker, 1972, Nucleation and growth of carbon deposits from the nickel catalyzed decomposition of acetylene, J. Catal., 26, 51, 10.1016/0021-9517(72)90032-2 Delpeux, 2002, High yield of pure multiwalled carbon nanotubes from the catalytic decomposition of acetylene on in situ formed cobalt nanoparticles, J. Nanosci. Nanotechnol., 2, 481, 10.1166/jnn.2002.139 Otsuka, 2001, Catalytic decomposition of light alkanes, alkenes and acetylene over Ni/SiO2, Appl. Catal. A Gen., 210, 371, 10.1016/S0926-860X(00)00831-0 Do Lee, 2002, Catalytic decomposition of acetylene on Fe(001): A first-principles study, Phys. Rev. B - Condens. Matter Mater. Phys., 66, 1 Jian, 2010, Preparation of high purity helical carbon nanofibers by the catalytic decomposition of acetylene and their growth mechanism, Carbon N. Y., 48, 4535, 10.1016/j.carbon.2010.08.035 Baker, 1973, Formation of filamentous carbon from iron, cobalt and chromium catalyzed decomposition of acetylene, J. Catal., 30, 86, 10.1016/0021-9517(73)90055-9 Labunov, 2012, Growth of few-wall carbon nanotubes with narrow diameter distribution over fe-mo-mgo catalyst by methane/acetylene catalytic decomposition, Nanoscale Res. Lett., 7, 1, 10.1186/1556-276X-7-102 Ren, 2007, Acetylene decomposition to helical carbon nanofibers over supported copper catalysts, Mater. Res. Bull., 42, 2202, 10.1016/j.materresbull.2007.01.007 Qin, 2004, Effect of synthesis method of nanocopper catalysts on the morphologies of carbon nanofibers prepared by catalytic decomposition of acetylene, J. Catal., 223, 389, 10.1016/j.jcat.2004.02.004 Baker, 1975, Formation of carbonaceous deposits from the platinum-iron catalyzed decomposition of acetylene, J. Catal., 37, 101, 10.1016/0021-9517(75)90137-2 Shakourzadeh Bolouri, 1986, Reactor design and energy concepts for a plasma process of acetylene black production, Plasma Chem. Plasma Process., 6, 335, 10.1007/BF00565549 Domínguez, 2007, Microwave-assisted catalytic decomposition of methane over activated carbon for CO2-free hydrogen production, Int. J. Hydrogen Energy, 32, 4792, 10.1016/j.ijhydene.2007.07.041 Eryildirim, 2021, Comparison of microwave and conventionally heated reactor performances in catalytic dehydrogenation of ethane, Int. J. Hydrogen Energy, 46, 5296, 10.1016/j.ijhydene.2020.11.067 Eslek Koyuncu, 2020, Microwave-assisted non-oxidative ethane dehydrogenation over different carbon materials, Diam. Relat. Mater., 110, 10.1016/j.diamond.2020.108130 Fazle Kibria, 2002, Synthesis of narrow-diameter carbon nanotubes from acetylene decomposition over an iron-nickel catalyst supported on alumina, Carbon, N. Y. 40, 1241, 10.1016/S0008-6223(01)00298-6 Mo, 2001, The growth mechanism of carbon nanotubes from thermal cracking of acetylene over nickel catalyst supported on alumina, Synth. Met., 122, 443, 10.1016/S0379-6779(00)00565-8 Penki, 2014, High rate capability of coconut kernel derived carbon as an anode material for lithium-ion batteries, Adv. Mater. Lett., 5, 184, 10.5185/amlett.2013.8530 Rajan, 2014, An in situ carbon-grafted alkaline iron electrode for iron-based accumulators, Energy Environ. Sci., 7, 1110, 10.1039/c3ee42783h Nash, 1984, The Ni-Pd (Nickel-Palladium) System, J. Phase Equilibria., 5, 446 Kim, 2014, Microwave heating of carbon-based solid materials, Carbon Lett., 15, 15, 10.5714/CL.2014.15.1.015 M. Vázquez, E.; Prato, Carbon Nanotubes and Microwaves :, ACS Nano. 3 (2009) 3819–3824. Kumar, 2020, Hydrogen production from acetic acid steam reforming over nickel-based catalyst synthesized via MOF process, Int. J. Hydrogen Energy, 45, 24397, 10.1016/j.ijhydene.2020.06.040 Zhang, 2009, The nature of cobalt species in carbon nanotubes and their catalytic performance in Fischer-Tropsch reaction, J. Mater. Chem., 19, 9241, 10.1039/b911355j