Research progress of catalysts for catalytic steam reforming of high temperature tar:A review
暂无分享,去创建一个
[1] C. Chung,et al. Catalytically stable monodispersed multi-core Ni-Co nanoparticles encapsulated with SiO2 shells for dry reforming of CH4 with CO2 , 2022, Journal of CO2 Utilization.
[2] Rui Shan,et al. Steam reforming of biomass tar model compound over two waste char-based Ni catalysts for syngas production , 2022, Energy.
[3] A. G. Chakinala,et al. Catalytic Reforming of Glycerol in Hot Compressed Water: Role of Metal and Support , 2022 .
[4] Jie Liu,et al. Analysis of oxygen-containing species in coal tar by comprehensive two-dimensional GC×GC-TOF and ESI FT-ICR mass spectrometry through a new subfraction separation method , 2022, Journal of the Energy Institute.
[5] G. Kormentzas,et al. Hydrogen Production by Steam Reforming of Propane and LPG Over Supported Metal Catalysts , 2022, Applied Catalysis B: Environmental.
[6] Weiming Yi,et al. Reaction mechanism of in-situ vaporization catalytic reforming of aqueous bio-oil for hydrogen production , 2022, International Journal of Hydrogen Energy.
[7] A. Raheem,et al. Insight into structural evolution and detailed non-isothermal kinetic analysis for coal pyrolysis , 2022, Energy.
[8] Jun Wang,et al. Understanding relationship of sepiolite structure tailoring and the catalytic behaviors in glycerol steam reforming over Co/sepiolite derived Co-phyllosilicate catalyst , 2022, Renewable Energy.
[9] J. Ren,et al. Boosting syngas production from corncob tar reforming over Ni/MgAl hydrotalcite-derived catalysts , 2022, Fuel.
[10] V. Galvita,et al. Looking inside a Ni-Fe/MgAl2O4 catalyst for methane dry reforming via Mössbauer spectroscopy and in situ QXAS , 2022, Applied Catalysis B: Environmental.
[11] Jie Ren,et al. Promoting syngas production from steam reforming of toluene using a highly stable Ni/(Mg, Al)Ox catalyst , 2022, Applied Catalysis B: Environmental.
[12] Haisheng Chen,et al. Aqueous phase reforming of biodiesel byproduct glycerol over mesoporous Ni-Cu/CeO2 for renewable hydrogen production , 2022, Fuel.
[13] H. Tan,et al. C1∼C2 hydrocarbons generation and mutual conversion behavior in coal pyrolysis process , 2022, Fuel.
[14] S. Pang,et al. A theoretical and experimental study on steam reforming of bio-oil over Ni/Co modified carbon-based catalysts , 2022, Fuel.
[15] Liang Huang,et al. Hydrogen-rich syngas production from biomass pyrolysis and catalytic reforming using biochar-based catalysts , 2022, Fuel.
[16] Ningbo Gao,et al. Catalytic steam reforming of real tar under high-efficiency Ni/USY catalyst for H2 production , 2021 .
[17] Rui Shan,et al. Catalytic toluene steam reforming using Ni supported catalyst from pyrolytic peat , 2021, Fuel Processing Technology.
[18] Guoneng Li,et al. Influence of La2O3 addition on activity and coke formation over Ni/SiO2 for acetic acid steam reforming , 2021, International Journal of Hydrogen Energy.
[19] Taejun Kim,et al. Recent trends in the development of reactor systems for hydrogen production via methanol steam reforming , 2021, International Journal of Hydrogen Energy.
[20] G. Luo,et al. Effect of characteristic component on diesel steam reforming to hydrogen over highly dispersed Ni–Rh- and Ni-based catalysts: Experiment and DFT calculation study , 2021 .
[21] Lianyang Zhang,et al. Theoretical study on dry reforming of methane catalyzed by Cu12M (M = Cu, Fe, Co, Ni) core-shell bimetallic clusters , 2021 .
[22] J. Ran,et al. Effect of Pd doping in (Fe/Ni)/CeO2 catalyst for the reaction path in CO2 oxidative ethane dehydrogenation/reforming , 2021 .
[23] Rui-lun Xie,et al. Nitrogen-doped porous carbon supported nickel nanoparticles as catalyst for catalytic hydroconversion of high-temperature coal tar , 2021, Journal of Fuel Chemistry and Technology.
[24] Jing-Pei Cao,et al. Comparative evaluation of tar steam reforming over graphitic carbon supported Ni and Co catalysts at low temperature , 2021 .
[25] Xianyong Wei,et al. Insight into molecular interactions between condensed aromatics in high-temperature coal tar and organic solvents by combining experimental, density functional theory, and molecular dynamics , 2021 .
[26] Jianglong Yu,et al. Role of microwave during microwave-assisted catalytic reforming of guaiacol, syringolbio-oil as model compounds , 2021 .
[27] Xiaoqian Ma,et al. Role of filamentous coke in deactivation of Ni/bio-char catalyst during dry reforming of non-oxygenates tar , 2021 .
[28] S. Iglauer,et al. Current advances in syngas (CO + H2) production through bi-reforming of methane using various catalysts: A review , 2021 .
[29] Qinhui Wang,et al. Enhanced hydrogen production by the catalytic alkaline thermal gasification of cellulose with Ni/Fe dual-functional CaO based catalysts , 2021 .
[30] Jun Liu,et al. Catalytic performance of CH4–CO2 reforming over metal free nitrogen-doped biomass carbon catalysts: Effect of different preparation methods , 2021 .
[31] Jiaming Bai,et al. Monolithic Biochar-Supported Cobalt-Based Catalysts with High-Activity and Superior-Stability for Biomass Tar Reforming , 2021, SSRN Electronic Journal.
[32] Ningbo Gao,et al. Modified nickel-based catalysts for improved steam reforming of biomass tar: A critical review , 2021, Renewable and Sustainable Energy Reviews.
[33] Xiaoqian Ma,et al. Effect of synthesis temperature on catalytic activity and coke resistance of Ni/bio-char during CO2 reforming of tar , 2021, International Journal of Hydrogen Energy.
[34] J. Rodríguez,et al. A theoretical catalytic mechanism for methanol reforming in CeO2 vs Ni/CeO2 by energy transition states profiles , 2021 .
[35] Xianyong Wei,et al. Value-added utilization of high-temperature coal tar: A review , 2021 .
[36] Haoquan Hu,et al. Integrated process of coal pyrolysis with dry reforming of low carbon alkane over Ni/La2O3-ZrO2 with different La/Zr ratio , 2021 .
[37] S. Kawi,et al. Steam reforming of toluene as model compound of biomass tar over Ni–Co/La2O3 nano-catalysts: Synergy of Ni and Co , 2021 .
[38] Xi Li,et al. Arming wood carbon with carbon-coated mesoporous nickel-silica nanolayer as monolithic composite catalyst for steam reforming of toluene. , 2021, Journal of colloid and interface science.
[39] Ningbo Gao,et al. Nickel supported over MCM-41 coated ceramic membrane for steam reforming of real tar , 2021 .
[40] S. Kawi,et al. LDH-derived Ni–MgO–Al2O3 catalysts for hydrogen-rich syngas production via steam reforming of biomass tar model: Effect of catalyst synthesis methods , 2021 .
[41] Zhiwu Liang,et al. Thermodynamic evaluation and experimental investigation of CaO-assisted Fe-based chemical looping reforming process for syngas production , 2021 .
[42] Junji Cao,et al. Brown Carbon in Primary and Aged Coal Combustion Emission. , 2021, Environmental science & technology.
[43] L. Ding,et al. A review of the effects of alkali and alkaline earth metal species on biomass gasification , 2021 .
[44] L. Corredor,et al. Thermochemical conversion of coal and biomass blends in a top-lit updraft fixed bed reactor: Experimental assessment of the ignition front propagation velocity , 2021 .
[45] P. Tian,et al. Ce-introduced effects on modification of acidity and Pt electronic states on Pt-Sn/γ-Al2O3 catalysts for catalytic reforming , 2021 .
[46] Brian M. Leonard,et al. Self-regenerable carbon nanofiber supported Fe – Mo2C catalyst for CH4-CO2 assisted reforming of biomass to hydrogen rich syngas , 2021 .
[47] He'an Luo,et al. Efficient separation of phenols from coal tar with aqueous solution of amines by liquid-liquid extraction , 2021 .
[48] M. Iliuta,et al. Development of residue coal fly ash supported nickel catalyst for H2 production via glycerol steam reforming , 2021 .
[49] Chun-Zhu Li,et al. Kinetic features of ethanol steam reforming and decomposition using a biochar-supported Ni catalyst , 2021, Fuel Processing Technology.
[50] M. Taghizadeh,et al. Effects of catalyst preparation route and promoters (Ce and Zr) on catalytic activity of CuZn/CNTs catalysts for hydrogen production from methanol steam reforming , 2021 .
[51] S. Porada,et al. Effect of K, Na and Ca-based catalysts on the steam gasification reactions of coal. Part II: Composition and amount of multi-component catalysts , 2021 .
[52] Junying Zhang,et al. Tailoring the stability of Ni-Fe/mayenite in methane – Carbon dioxide reforming , 2021 .
[53] Hua Song,et al. Non-thermal plasma assisted catalytic reforming of naphtha and its model compounds with methane at near ambient conditions , 2021 .
[54] Y. Xiong,et al. Catalytic cracking of biomass tar using Ni nanoparticles embedded carbon nanofiber/porous carbon catalysts , 2020 .
[55] Yufeng Wu,et al. Synthesis and evaluation of pyrolysis waste peat char supported catalyst for steam reforming of toluene , 2020 .
[56] He Yang,et al. Enhanced production of light tar from integrated process of in-situ catalytic upgrading lignite tar and methane dry reforming over Ni/mesoporous Y , 2020 .
[57] Xiaoshu Wang,et al. Low-temperature catalytic steam reforming of toluene as a biomass tar model compound over three-dimensional ordered macroporous Ni-Pt/Ce1−xZrxO2 catalysts , 2020 .
[58] Shu Zhang,et al. Steam reforming of acetic acid over Ni/biochar catalyst treated with HNO3: Impacts of the treatment on surface properties and catalytic behaviors , 2020 .
[59] Wei Huang,et al. Interactive tools to assist convenient group-type identification and comparison of low-temperature coal tar using GC × GC–MS , 2020 .
[60] S. Firoozi,et al. Enhancing the catalytic performance of Co substituted NiAl2O4 spinel by ultrasonic spray pyrolysis method for steam and dry reforming of methane , 2020 .
[61] G. Scheffknecht,et al. Reforming of toluene as a tar model compound over straw char containing fly ash , 2020 .
[62] F. Micheli,et al. Sol-gel Ni-based/γ-Al2O3 as efficient catalysts for toluene reforming: Catalytic activity during long-term experiments and in presence of H2S , 2020 .
[63] Yijun Zhao,et al. Mechanism of catalytic tar reforming over biochar: Description of volatile-H2O-char interaction , 2020 .
[64] F. Jing,et al. Glycerol steam reforming for hydrogen production over bimetallic MNi/CNTs (M Co, Cu and Fe) catalysts , 2020 .
[65] Yifan Sun,et al. Tailoring the surface properties of Ni/SiO2 catalyst with sulfuric acid for enhancing the catalytic efficiency for steam reforming of guaiacol , 2020 .
[66] M. Greluk,et al. Enhanced catalytic performance of La2O3 promoted Co/CeO2 and Ni/CeO2 catalysts for effective hydrogen production by ethanol steam reforming , 2020 .
[67] Hao Yu,et al. Low Temperature CO2 Reforming with Methane Reaction over CeO2-Modified Ni@SiO2 Catalysts. , 2020, ACS applied materials & interfaces.
[68] Rui Shan,et al. Reactivity and deactivation mechanisms of toluene reforming over waste peat char-supported Fe/Ni/Ca catalyst , 2020 .
[69] Jie Feng,et al. Effects of inherent potassium on the catalytic performance of Ni/biochar for steam reforming of toluene as a tar model compound , 2020 .
[70] C. Detavernier,et al. Effect of Rh in Ni-based catalysts on sulfur impurities during methane reforming , 2020, Applied Catalysis B: Environmental.
[71] Jing-Pei Cao,et al. Highly active and stable HF acid modified HZSM-5 supported Ni catalysts for steam reforming of toluene and biomass pyrolysis tar , 2020 .
[72] Yonghui Bai,et al. Effects of loading methods and oxidation degree of support on the tar reforming activity of char-supported Ni catalyst using toluene as a model compound , 2020 .
[73] Qiangqiang Ren,et al. Effect of temperature on multiple competitive processes for co-production of carbon nanotubes and hydrogen during catalytic reforming of toluene , 2020 .
[74] D. Dong,et al. A comparative study of catalytic behaviors of Mn, Fe, Co, Ni, Cu and Zn–Based catalysts in steam reforming of methanol, acetic acid and acetone , 2020 .
[75] V. Ranade,et al. Performance of biochar as a catalyst for tar steam reforming: Effect of the porous structure , 2020, Applied Energy.
[76] Xianyong Wei,et al. Catalytic Hydroconversion of a High-Temperature Coal Tar over Two Attapulgite Powder-Supported Nickel Catalysts , 2020 .
[77] F. Zhu,et al. Plasma reforming of tar model compound in a rotating gliding arc reactor: Understanding the effects of CO2 and H2O addition , 2020 .
[78] F. Micheli,et al. Sol-gel Ni/γ-Al2O3 material as secondary catalyst for toluene reforming: Tailoring the γ-Al2O3 substrate with stearic acid , 2020 .
[79] Zhong-yang Luo,et al. Controlled separation of coal tar based on different temperature , 2019 .
[80] Jing-Pei Cao,et al. Recent advances in syngas production from biomass catalytic gasification: A critical review on reactors, catalysts, catalytic mechanisms and mathematical models , 2019 .
[81] Chunfei Wu,et al. Roles of alkali/alkaline earth metals in steam reforming of biomass tar for hydrogen production over perovskite supported Ni catalysts , 2019 .
[82] Jing-Pei Cao,et al. Acid washed lignite char supported bimetallic Ni-Co catalyst for low temperature catalytic reforming of corncob derived volatiles , 2019, Energy Conversion and Management.
[83] Xianyong Wei,et al. Insight into the Compositions of the Soluble/Insolube Portions from the Acid/Base Extraction of Five Fractions Distilled from a High Temperature Coal Tar , 2019, Energy & Fuels.
[84] Xiao-hui Liu,et al. NiAl2O4 Spinel Supported Pt Catalyst: High Performance and Origin in Aqueous-Phase Reforming of Methanol , 2019, ACS Catalysis.
[85] S. Lambert,et al. Ni-doped γ-Al2O3 as secondary catalyst for bio-syngas purification: influence of Ni loading, catalyst preparation, and gas composition on catalytic activity , 2019, Materials Today Chemistry.
[86] Weiming Yi,et al. Study the reaction mechanism of catalytic reforming of acetic acid through the instantaneous gas production , 2019, International Journal of Hydrogen Energy.
[87] S. Kawi,et al. Reforming of tar from biomass gasification in a hybrid catalysis-plasma system: A review , 2019, Applied Catalysis B: Environmental.
[88] Feiqiang Guo,et al. One-step synthesis of biomass activated char supported copper nanoparticles for catalytic cracking of biomass primary tar , 2019, Energy.
[89] C. Courson,et al. Synthesis of Ni/γ-Al2O3SiO2 catalysts with different silicon precursors for the steam toluene reforming , 2019, Microporous and Mesoporous Materials.
[90] Zhanlong Song,et al. Toluene microwave-assisted reforming with CO2 or a mixed agent of CO2-H2O on Fe-doped activated biochar , 2019, Energy.
[91] Jun Yu Li,et al. The use of gasification solid products as catalysts for tar reforming , 2019, Renewable and Sustainable Energy Reviews.
[92] Xiaoxun Ma,et al. Separation of petroleum ether extracted residue of low temperature coal tar by chromatography column and structural feature of fractions by TG-FTIR and PY-GC/MS , 2019, Fuel.
[93] Shifei Kang,et al. Synthesis of graphitic mesoporous carbon supported Ce-doped nickel catalyst for steam reforming of toluene , 2019, Materials Letters.
[94] Jun Wang,et al. Hydrogen generation by steam reforming of tar model compounds using lanthanum modified Ni/sepiolite catalysts , 2019, Energy Conversion and Management.
[95] Haoquan Hu,et al. Upgrading of coal tar with steam catalytic cracking over Al/Ce and Al/Zr co-doped Fe2O3 catalysts , 2019, Journal of Fuel Chemistry and Technology.
[96] Yi Wang,et al. Effect of the pre-reforming by Fe/bio-char catalyst on a two-stage catalytic steam reforming of bio-oil , 2019, Fuel.
[97] Wen‐ying Li,et al. Low-Temperature Steam Reforming of Toluene and Biomass Tar over Biochar-Supported Ni Nanoparticles , 2018, ACS Sustainable Chemistry & Engineering.
[98] Chunfei Wu,et al. Preparation, modification and development of Ni-based catalysts for catalytic reforming of tar produced from biomass gasification , 2018, Renewable and Sustainable Energy Reviews.
[99] Zsuzsa Sárossy,et al. Activity of chars and activated carbons for removal and decomposition of tar model compounds – A review , 2018, Renewable and Sustainable Energy Reviews.
[100] Tianhu Chen,et al. High catalytic performance of Fe-Ni/Palygorskite in the steam reforming of toluene for hydrogen production , 2018, Applied Energy.
[101] Q. Wang,et al. Experimental study and modeling of heavy tar steam reforming , 2018, Fuel Processing Technology.
[102] Hokyung Choi,et al. Nickel supported on low-rank coal for steam reforming of ethyl acetate , 2018, International Journal of Hydrogen Energy.
[103] En-chen Jiang,et al. Hydrogen from Rice Husk Pyrolysis Volatiles via Non-Noble Ni–Fe Catalysts Supported on Five Differently Treated Rice Husk Pyrolysis Carbon Supports , 2018, ACS Sustainable Chemistry & Engineering.
[104] Peng Zhang,et al. Hollow hierarchical Ni/MgO-SiO2 catalyst with high activity, thermal stability and coking resistance for catalytic dry reforming of methane , 2018, International Journal of Hydrogen Energy.
[105] N. Laosiripojana,et al. Type of contribution: Research article catalytic activity of sewage sludge char supported Re-Ni bimetallic catalyst toward cracking/reforming of biomass tar , 2018, Renewable Energy.
[106] M. Adnan,et al. Fluidizable NiO–Fe2O3/SiO2–γAl2O3 for tar (toluene) conversion in biomass gasification , 2018 .
[107] Chunming Xu,et al. Composition and Transformation of Sulfur-, Oxygen-, and Nitrogen-containing Compounds in the Hydrotreating Process of a Low Temperature Coal Tar , 2018 .
[108] Iljeong Heo,et al. Effect of Zn promoter on catalytic activity and stability of Co/ZrO 2 catalyst for dry reforming of CH 4 , 2018 .
[109] A. Shahbazi,et al. Investigation of Ni/Fe/Mg zeolite-supported catalysts in steam reforming of tar using simulated-toluene as model compound , 2018 .
[110] Jie Chang,et al. Dispersed and high loading Ni catalyst stabilized in porous SiO2 matrix for substituted natural gas production , 2018 .
[111] Yijun Zhao,et al. In-situ steam reforming of biomass tar over sawdust biochar in mild catalytic temperature , 2017 .
[112] M. Nahil,et al. Hybrid plasma-catalytic steam reforming of toluene as a biomass tar model compound over Ni/Al2O3 catalysts , 2017 .
[113] Arshad Ahmad,et al. Renewable hydrogen production from bio-oil derivative via catalytic steam reforming: An overview , 2017 .
[114] C. Müller,et al. Supported Bimetallic NiFe Nanoparticles through Colloid Synthesis for Improved Dry Reforming Performance , 2017 .
[115] S. Yusup,et al. The influence of catalysts in biomass steam gasification and catalytic potential of coal bottom ash in biomass steam gasification: A review , 2017 .
[116] Yi Wang,et al. Opposite effects of self-growth amorphous carbon and carbon nanotubes on the reforming of toluene with Ni/α-Al2O3 for hydrogen production , 2017 .
[117] Haisheng Chen,et al. Investigation of Ni/SiO2 catalysts prepared at different conditions for hydrogen production from ethanol steam reforming , 2017 .
[118] Takuma Higo,et al. Promotive effect of Ba addition on the catalytic performance of Ni/LaAlO3 catalysts for steam reforming of toluene , 2017 .
[119] Yu Yuanyuan,et al. Acid-Modified Natural Bauxite Mineral as a Cost-Effective and High-Efficient Catalyst Support for Slurry-Phase Hydrocracking of High-Temperature Coal Tar , 2016 .
[120] S. Moreno,et al. Promoter effect of Ce and Pr on the catalytic stability of the Ni-Co system for the oxidative steam reforming of ethanol , 2016 .
[121] K. Tomishige,et al. Characterization and catalytic performance of hydrotalcite-derived Ni-Cu alloy nanoparticles catalysts for steam reforming of 1-methylnaphthalene , 2016 .
[122] Zhang Jianwei,et al. Steam reforming of hydrocarbon fuels over M (Fe, Co, Ni, Cu, Zn)–Ce bimetal catalysts supported on Al2O3 , 2016 .
[123] Abuliti Abudula,et al. Catalytic steam reforming of biomass tar: Prospects and challenges , 2016 .
[124] K. Tomishige,et al. Comparative study on steam reforming of model aromatic compounds of biomass tar over Ni and Ni–Fe alloy nanoparticles , 2015 .
[125] K. Hidajat,et al. Catalytic Biomass Gasification to Syngas Over Highly Dispersed Lanthanum‐Doped Nickel on SBA‐15 , 2015 .
[126] Surachai Karnjanakom,et al. Catalytic steam reforming of tar derived from steam gasification of sunflower stalk over ethylene glycol assisting prepared Ni/MCM-41 , 2015 .
[127] Taegyu Kim,et al. Synergetic mechanism of methanol–steam reforming reaction in a catalytic reactor with electric discharges , 2014 .
[128] S. Kawi,et al. Steam reforming of toluene as a biomass tar model compound over CeO2 promoted Ni/CaO–Al2O3 catalytic systems , 2013 .
[129] K. Tomishige,et al. High catalytic activity of Co-Fe/α-Al2O3 in the steam reforming of toluene in the presence of hydrogen , 2013 .
[130] Rasmus Trane,et al. Catalytic steam reforming of bio-oil , 2012 .
[131] Gérald Djéga-Mariadassou,et al. Steam reforming of model gasification tars compounds on nickel based ceria-zirconia catalysts , 2011 .
[132] K. Magrini-Bair,et al. Review of Catalytic Conditioning of Biomass-Derived Syngas , 2009 .