One-pot fabrication of an efficient 3D porous SiC based monolithic catalyst for methanol steam reforming via a carbon encapsulation strategy
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Guojun Lan | Xiucheng Sun | Yiyang Qiu | Zaizhe Cheng | Yunzhi Li | Lingjie He | Xianglei He | Ying Li
[1] Pan Yin,et al. Designing Cu0−Cu+ dual sites for improved C−H bond fracture towards methanol steam reforming , 2023, Nature communications.
[2] S. Nabavi,et al. Design and performance testing of a monolithic nickel-based SiC catalyst for steam methane reforming , 2023, Applied Catalysis A: General.
[3] Zeyi Xiao,et al. A flow-through catalytic membrane micro-reactor for hydrogen production by methanol steam reforming , 2023, Chemical Engineering Science.
[4] Hang Qin,et al. CuO–ZnO catalyst decorated on porous CeO2-based nanosheets in-situ grown on cordierite for methanol steam reforming , 2023, Ceramics International.
[5] Hao Yu,et al. Zn-incorporated joule-heated carbon nanofiber aerogel-supported Cu catalyst for hydrogen production via methanol steam reforming , 2023, International Journal of Hydrogen Energy.
[6] Hao Yu,et al. A Joule-heated carbon nanofiber aerogel-supported catalyst for hydrogen production via methanol steam reforming , 2023, Carbon.
[7] Zhongxu Dai,et al. Application of metal-BDC-derived catalyst on cordierite honeycomb ceramic support in a microreactor for hydrogen production , 2023, Ceramics International.
[8] Yanjie Hu,et al. Boosting catalytic activity of Cu-Ce solid solution catalysts by flame spray pyrolysis with high Cu+ concentration and oxygen vacancies , 2023, Chemical Engineering Journal.
[9] Chen Zhao,et al. Sorbitol-derived carbon overlayers encapsulated Cu nanoparticles on SiO2: Stable and efficient for the continuous hydrogenation of ethylene carbonate , 2022, iScience.
[10] Xiaolong Wang,et al. Insights into the Inducing Effect of Aluminum on Cu–ZnO Synergy for Methanol Steam Reforming , 2022, Industrial & Engineering Chemistry Research.
[11] X. Bao,et al. Selective CO2 Electroreduction to Ethanol over Carbon-Coated CuOx Catalyst. , 2022, Angewandte Chemie.
[12] M. Fan,et al. Enhanced Low-Temperature Co2 Methanation Performance of Ni/Zro2 Catalysts Via a Phase Engineering Strategy , 2022, SSRN Electronic Journal.
[13] Xianglan Xu,et al. Using XRD extrapolation method to design Ce-Cu-O solid solution catalysts for methanol steam reforming to produce H2: The effect of CuO lattice capacity on the reaction performance , 2022, Catalysis Today.
[14] Mingtao Li,et al. Carbon-Confined Indium Oxides for Efficient Carbon Dioxide Reduction in a Solid-State Electrolyte Flow Cell. , 2022, Angewandte Chemie.
[15] Deqing Mei,et al. Direct ink writing of 3D SiC scaffold as catalyst support for thermally autonomous methanol steam reforming microreactor , 2022, Renewable Energy.
[16] Hang Qin,et al. Porous reticular CuO/ZnO/CeO2/ZrO2 catalyst derived from polyacrylic acid hydrogel system on Al2O3 foam ceramic support for methanol steam reforming microreactor , 2021, Ceramics International.
[17] Xiaolong Wang,et al. High-performance Cu/ZnO/Al2O3 catalysts for methanol steam reforming with enhanced Cu-ZnO synergy effect via magnesium assisted strategy , 2021, Journal of Energy Chemistry.
[18] Wen-ming Guo,et al. In Situ Reduction of a CuO/ZnO/CeO2/ZrO2 Catalyst Washcoat Supported on Al2O3 Foam Ceramic by Glycerol for Methanol Steam Reforming in a Microreactor , 2021, Industrial & Engineering Chemistry Research.
[19] Young‐Chang Joo,et al. Quasi-graphitic carbon shell-induced Cu confinement promotes electrocatalytic CO2 reduction toward C2+ products , 2021, Nature Communications.
[20] Deqing Mei,et al. A novel thermally autonomous methanol steam reforming microreactor using SiC honeycomb ceramic as catalyst support for hydrogen production , 2021, International Journal of Hydrogen Energy.
[21] Jinsong Zhang,et al. A structured catalyst with high dispersity of Au species based on hollow SiC foam with porous walls for acetylene hydrochlorination , 2021, RSC advances.
[22] Jianping Yang,et al. Boron heteroatom-doped silicon–carbon peanut-like composites enables long life lithium-ion batteries , 2021, Rare Metals.
[23] Yang Wang,et al. Effects of skeleton pore size on the microstructure and electromagnetic absorbing property of the SiC nanowires/SiC composites , 2021, Materials Letters.
[24] Qi Zhang,et al. In-situ self-assembled Cu2O/ZnO core-shell catalysts synergistically enhance the durability of methanol steam reforming , 2021 .
[25] Peng-zhao Gao,et al. One-step growth of CuO/ZnO/CeO2/ZrO2 nanoflowers catalyst by hydrothermal method on Al2O3 support for methanol steam reforming in a microreactor , 2021 .
[26] Deqing Mei,et al. A thermally autonomous methanol steam reforming microreactor with porous copper foam as catalyst support for hydrogen production , 2020 .
[27] Nilesh Narkhede,et al. Group 13 metal doped Cu/ZnO catalysts from phase pure precursors via an isomorphous substitution route: mechanistic insights into promotional effects for syngas hydrogenation to methanol , 2020 .
[28] Wen-ming Guo,et al. Hydrogen production in microreactor using porous SiC ceramic with a pore-in-pore hierarchical structure as catalyst support , 2020 .
[29] M. Ismail. Green synthesis and characterizations of copper nanoparticles , 2020, Materials Chemistry and Physics.
[30] Q. Fu,et al. CO2 hydrogenation to methanol over Cu/CeO2 and Cu/ZrO2 catalysts: Tuning methanol selectivity via metal-support interaction , 2020, Journal of Energy Chemistry.
[31] Shaolong Wan,et al. Optimal design and fabrication of surface microchannels on copper foam catalyst support in a methanol steam reforming microreactor , 2019, Fuel.
[32] B. Y. Jibril,et al. Copper zinc oxide nanocatalysts grown on cordierite substrate for hydrogen production using methanol steam reforming , 2019, International Journal of Hydrogen Energy.
[33] J. Papavasiliou,et al. Investigation of the Inhibiting Role of Hydrogen in the Steam Reforming of Methanol , 2019, ChemCatChem.
[34] W. Zhou,et al. Novel copper foam with ordered hole arrays as catalyst support for methanol steam reforming microreactor , 2019, Applied Energy.
[35] Shuirong Li,et al. An improved Cu/ZnO catalyst promoted by Sc2O3 for hydrogen production from methanol reforming , 2019, Fuel.
[36] Shaolong Wan,et al. Porous copper fiber sintered felts with surface microchannels for methanol steam reforming microreactor for hydrogen production , 2019, International Journal of Hydrogen Energy.
[37] Limin Guo,et al. A highly active and selective mesostructured Cu/AlCeO catalyst for CO2 hydrogenation to methanol , 2019, Applied Catalysis A: General.
[38] T. Doert,et al. Mechanisms of the polyol reduction of copper(ii) salts depending on the anion type and diol chain length. , 2018, Dalton transactions.
[39] R. Zou,et al. Si-Disordering in MgAl2O4-Spinel under High P-T Conditions, with Implications for Si-Mg Disorder in Mg2SiO4-Ringwoodite , 2018 .
[40] Christopher M. Andolina,et al. Dependence of H2 and CO2 selectivity on Cu oxidation state during partial oxidation of methanol on Cu/ZnO , 2018 .
[41] S. Soltanali,et al. Hydrogen production by methanol steam reforming on a cordierite monolith reactor coated with Cu–Ni/LaZnAlO4 and Cu–Ni/γ-Al2O3 catalysts , 2018, Research on Chemical Intermediates.
[42] S. Kuhn,et al. 3D printing in chemical engineering and catalytic technology: structured catalysts, mixers and reactors. , 2018, Chemical Society reviews.
[43] Yong Wang,et al. A novel structured PdZnAl/Cu fiber catalyst for methanol steam reforming in microreactor , 2017 .
[44] M. Sheintuch,et al. Kinetics and dynamics of methanol steam reforming on CuO/ZnO/alumina catalyst , 2017 .
[45] Qinghui Wang,et al. Development of cylindrical laminated methanol steam reforming microreactor with cascading metal foams as catalyst support , 2017 .
[46] Hossein Ajamein,et al. Influence of ambient gas on microwave-assisted combustion synthesis of CuO–ZnO–Al2O3 nanocatalyst used in fuel cell grade hydrogen production via methanol steam reforming , 2016 .
[47] Hossein Ajamein,et al. On the microwave enhanced combustion synthesis of CuO–ZnO–Al2O3 nanocatalyst used in methanol steam reforming for fuel cell grade hydrogen production: Effect of microwave irradiation and fuel ratio , 2016 .
[48] R. Jin,et al. Mild activation of CeO2-supported gold nanoclusters and insight into the catalytic behavior in CO oxidation. , 2016, Nanoscale.
[49] A. Basile,et al. CuO/ZnO catalysts for methanol steam reforming: The role of the support polarity ratio and surface area , 2015 .
[50] Hong Lei,et al. Hydrogenation of CO2 to CH3OH over Cu/ZnO catalysts with different ZnO morphology , 2015 .
[51] Lei Shi,et al. Surface impregnation combustion method to prepare nanostructured metallic catalysts without further reduction: As-burnt Cu–ZnO/SiO2 catalyst for low-temperature methanol synthesis , 2012 .
[52] L. Hong,et al. Effect of calcium addition on catalytic ethanol steam reforming of Ni/Al2O3: I. Catalytic stability, electronic properties and coking mechanism , 2011 .
[53] Luigi Colombo,et al. Evolution of graphene growth on Ni and Cu by carbon isotope labeling. , 2009, Nano letters.
[54] S. Banerjee,et al. Large-Area Synthesis of High-Quality and Uniform Graphene Films on Copper Foils , 2009, Science.
[55] S. Sugunan,et al. CuAl2O4 formation and its effect on α-Al2O3 phase evolution on calcination of metal ion doped boehmite xerogels , 2007 .
[56] Kangnian Fan,et al. Effect of preparation method on the hydrogen production from methanol steam reforming over binary Cu/ZrO2 catalysts , 2006 .
[57] A. Datye,et al. Nonisothermality in packed bed reactors for steam reforming of methanol , 2005 .
[58] U. Ozkan,et al. Steam reforming of methanol to H2 over nonreduced Zr-containing CuO/ZnO catalysts , 2004 .
[59] D. Resasco,et al. In situ TPO/Raman to characterize single-walled carbon nanotubes , 2003 .
[60] C. Au,et al. Carbon deposition and catalyst stability over La2NiO4/γ-Al2O3 during CO2 reforming of methane to syngas , 2003 .
[61] Daniel E. Resasco,et al. Controlled production of single-wall carbon nanotubes by catalytic decomposition of CO on bimetallic Co–Mo catalysts , 2000 .
[62] James E. Moore,et al. Raman characterization studies of synthetic and natural MgAl2O4 crystals , 1973 .
[63] S. Tu,et al. Structured nanoporous copper catalysts prepared by laser powder bed fusion and dealloying for on-board methanol steam reforming , 2023, Fuel.
[64] Qi Zhang,et al. Fast start-up structured CuFeMg/Al2O3 catalyst applied in microreactor for efficient hydrogen production in methanol steam reforming , 2021 .
[65] Yong Qin,et al. Enhancing effect of MgO modification of Cu–Al spinel oxide catalyst for methanol steam reforming , 2020 .
[66] A. Basile,et al. Methanol steam reforming for hydrogen generation via conventional and membrane reactors: A review , 2014 .