Understanding the catalytic upgrading of bio-oil from pine pyrolysis over CO2-activated biochar
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Shasha Liu | Yu Feng | Shu Zhang | Xun Hu | Gang Wu | Jianbin Zhou | Hong Zhang | Yong Huang | Bin-tong Li | Yi Gao | Bin Li
[1] Shu Zhang,et al. Volatile-char interactions during biomass pyrolysis: Effect of char preparation temperature , 2021 .
[2] Shasha Liu,et al. Volatile-char interactions during biomass pyrolysis: Contribution of amino group on graphitized carbon nanotube to xylose evolution based on experimental and theoretical studies , 2020 .
[3] Charles A. Mullen,et al. Environmental, exergetic and economic tradeoffs of catalytic- and fast pyrolysis-to-renewable diesel , 2020 .
[4] Xun Hu,et al. Progress of the applications of bio-oil , 2020 .
[5] R. Ruan,et al. Integrated harvest of phenolic monomers and hydrogen through catalytic pyrolysis of biomass over nanocellulose derived biochar catalyst. , 2020, Bioresource technology.
[6] Haiping Yang,et al. Role of porous structure and active O-containing groups of activated biochar catalyst during biomass catalytic pyrolysis , 2020 .
[7] C. Pastore,et al. Synthesis and characterization of nanostructured calcium oxides supported onto biochar and their application as catalysts for biodiesel production , 2020 .
[8] Yijun Zhao,et al. Mechanism of in-situ dynamic catalysis and selective deactivation of H2O-activated biochar for biomass tar reforming , 2020 .
[9] B. Ni,et al. Microplastics Mitigation in Sewage Sludge through Pyrolysis: The Role of Pyrolysis Temperature , 2020 .
[10] Shasha Liu,et al. Volatile-char interactions during biomass pyrolysis: Understanding the potential origin of char activity. , 2020, Bioresource technology.
[11] Shu Zhang,et al. Fundamental Advances in Biomass Autothermal/Oxidative Pyrolysis: A Review , 2020, ACS Sustainable Chemistry & Engineering.
[12] Shasha Liu,et al. Volatile-char interactions during biomass pyrolysis: Cleavage of C-C bond in a β-5 lignin model dimer by amino-modified graphitized carbon nanotube. , 2020, Bioresource technology.
[13] Dengyu Chen,et al. Upgrading of bio-oil via solar pyrolysis of the biomass pretreated with aqueous phase bio-oil washing, solar drying, and solar torrefaction. , 2020, Bioresource technology.
[14] Arash Tahmasebi,et al. Catalytic reforming of palm kernel shell microwave pyrolysis vapors over iron-loaded activated carbon: Enhanced production of phenol and hydrogen. , 2020, Bioresource technology.
[15] Shasha Liu,et al. Volatile–Char Interactions during Biomass Pyrolysis: A Case Study of a Lignin Model Compound and Functionalized Graphitized Carbon Nanotubes , 2019, Energy & Fuels.
[16] P. Jönsson,et al. Catalytic pyrolysis of lignin using low-cost materials with different acidities and textural properties as catalysts , 2019, Chemical Engineering Journal.
[17] Mark Paskevicius,et al. Role of O-containing functional groups in biochar during the catalytic steam reforming of tar using the biochar as a catalyst , 2019, Fuel.
[18] K. Shah,et al. Thermogravimetric Analysis of biosolids pyrolysis in the presence of mineral oxides , 2019, Renewable Energy.
[19] Yijun Zhao,et al. Characteristics of Gas–Liquid–Solid Products in Corn Straw Gasification: Effect of the Char–Tar–H2O Interaction , 2019, Energy & Fuels.
[20] Haiping Yang,et al. Lignin Characterization and Catalytic Pyrolysis for Phenol-Rich Oil with TiO2-Based Catalysts , 2019, Energy & Fuels.
[21] Shasha Liu,et al. Catalytic microwave-assisted pyrolysis of plastic waste over NiO and HY for gasoline-range hydrocarbons production , 2019, Energy Conversion and Management.
[22] Yijun Zhao,et al. Evolution of Char Structure During In-Situ Biomass Tar Reforming: Importance of the Coupling Effect Among the Physical-Chemical Structure of Char-Based Catalysts , 2019, Prime Archives in Chemistry.
[23] Brahim Mezari,et al. Co-Aromatization of Furan and Methanol over ZSM-5—A Pathway to Bio-Aromatics , 2019, ACS Catalysis.
[24] Weiming Yi,et al. Pyrolysis behavior of cellulose in a fixed bed reactor: Residue evolution and effects of parameters on products distribution and bio-oil composition , 2019, Energy.
[25] Hongqi Sun,et al. Pyrolysis of palm kernel shell with internal recycling of heavy oil. , 2019, Bioresource technology.
[26] Dengyu Chen,et al. Restudy on torrefaction of corn stalk from the point of view of deoxygenation and decarbonization , 2018, Journal of Analytical and Applied Pyrolysis.
[27] P. Jönsson,et al. Two-stage ex-situ catalytic pyrolysis of lignocellulose for the production of gasoline-range chemicals , 2018, Journal of Analytical and Applied Pyrolysis.
[28] Bin Liu,et al. Catalytic cracking of model compounds of bio-oil over HZSM-5 and the catalyst deactivation. , 2018, The Science of the total environment.
[29] R. Ruan,et al. From glucose-based carbohydrates to phenol-rich bio-oils integrated with syngas production via catalytic pyrolysis over an activated carbon catalyst , 2018 .
[30] Yijun Zhao,et al. Improvement and maintenance of biochar catalytic activity for in-situ biomass tar reforming during pyrolysis and H2O/CO2 gasification , 2018 .
[31] Dan Luo,et al. The effect of oxygen–containing functional groups on the H2 adsorption of graphene–based nanomaterials: experiment and theory , 2018 .
[32] Lei Zhang,et al. Destruction of tar during volatile-char interactions at low temperature. , 2018 .
[33] Yijun Zhao,et al. Steam Gasification of Sawdust Biochar Influenced by Chemical Speciation of Alkali and Alkaline Earth Metallic Species , 2018 .
[34] Ki-Hyun Kim,et al. Biochar as a Catalyst , 2017 .
[35] Poritosh Roy,et al. Prospects for pyrolysis technologies in the bioenergy sector: A review , 2017 .
[36] P. Zhang,et al. Construction of a macromolecular structural model of Chinese lignite and analysis of its low-temperature oxidation behavior , 2017 .
[37] A. Bridgwater,et al. Quantitative Insights into the Fast Pyrolysis of Extracted Cellulose, Hemicelluloses, and Lignin , 2017, ChemSusChem.
[38] Tingting Li,et al. An advanced biomass gasification technology with integrated catalytic hot gas cleaning. Part III: Effects of inorganic species in char on the reforming of tars from wood and agricultural wastes , 2016 .
[39] Dengyu Chen,et al. Pyrolysis polygeneration of poplar wood: Effect of heating rate and pyrolysis temperature. , 2016, Bioresource technology.
[40] Haiping Yang,et al. Chemical structure evolution of char during the pyrolysis of cellulose , 2015 .
[41] X. Bi,et al. Co-gasification of biosolids with biomass: Thermogravimetric analysis and pilot scale study in a bubbling fluidized bed reactor. , 2015, Bioresource technology.
[42] Chun-Zhu Li,et al. Effects of gasifying agent on the evolution of char structure during the gasification of Victorian brown coal , 2013 .
[43] A. Bridgwater,et al. Corrigendum to “Study on the pyrolytic behaviour of xylan-based hemicellulose using TG–FTIR and Py–GC–FTIR” [J. Anal. Appl. Pyrol. 87 (2009) 199–206] , 2010 .
[44] Chun-Zhu Li,et al. Drastic changes in biomass char structure and reactivity upon contact with steam , 2008 .
[45] Chun-Zhu Li,et al. Volatilisation and catalytic effects of alkali and alkaline earth metallic species during the pyrolysis and gasification of Victorian brown coal. Part VII. Raman spectroscopic study on the changes in char structure during the catalytic gasification in air , 2006 .