Catalysts in Coronas: A Surface Spatial Confinement Strategy for High-Performance Catalysts in Methane Dry Reforming
暂无分享,去创建一个
S. Dai | Hao Chen | Huiyuan Zhu | Ning Zhang | Z. Wang | Peng Wu | Wenming Liu | Xiang Wang | Xianhua Zhang | Honggen Peng | Sixue Lin | Xiaojuan You | Xue Han
[1] Junfeng Zhang,et al. Insight into the effects of the oxygen species over Ni/ZrO2 catalyst surface on methane reforming with carbon dioxide , 2019, Applied Catalysis B: Environmental.
[2] Dequan Xiao,et al. Lattice Strained Ni-Co alloy as a High-Performance Catalyst for Catalytic Dry Reforming of Methane , 2019, ACS Catalysis.
[3] Run‐Ping Ye,et al. Revealing the Synergistic Effects of Rh and Substituted La2B2O7 (B = Zr or Ti) for Preserving the Reactivity of Catalyst in Dry Reforming of Methane , 2018, ACS Catalysis.
[4] Jonathan A. Fan,et al. Metal oxide redox chemistry for chemical looping processes , 2018, Nature Reviews Chemistry.
[5] Z. Wang,et al. Design of Ni-ZrO2@SiO2 catalyst with ultra-high sintering and coking resistance for dry reforming of methane to prepare syngas , 2018, Journal of CO2 Utilization.
[6] C. Liu,et al. Dry Reforming of Methane on Single-Site Ni/MgO Catalysts: Importance of Site Confinement , 2018, ACS Catalysis.
[7] A. Gurlo,et al. Surface Carbon as a Reactive Intermediate in Dry Reforming of Methane to Syngas on a 5% Ni/MnO Catalyst , 2018, ACS Catalysis.
[8] Xianglan Xu,et al. LaNiO3 nanocube embedded in mesoporous silica for dry reforming of methane with enhanced coking resistance , 2018, Microporous and Mesoporous Materials.
[9] S. Dai,et al. Confined Ultrathin Pd-Ce Nanowires with Outstanding Moisture and SO2 Tolerance in Methane Combustion. , 2018, Angewandte Chemie.
[10] Ning Zhang,et al. Nickel nanoparticles embedded in mesopores of AlSBA-15 with a perfect peasecod-like structure: A catalyst with superior sintering resistance and hydrothermal stability for methane dry reforming , 2018 .
[11] Haiqian Wang,et al. Effects of Ce substitution at the A-site of LaNi0.5Fe0.5O3 perovskite on the enhanced catalytic activity for dry reforming of methane , 2018 .
[12] C. Philippopoulos,et al. Preparation of CuO/SBA-15 catalyst by the modified ammonia driven deposition precipitation method with a high thermal stability and an efficient automotive CO and hydrocarbons conversion , 2018 .
[13] Ning Zhang,et al. In Situ Embedded Pseudo Pd-Sn Solid Solution in Micropores Silica with Remarkable Catalytic Performance for CO and Propane Oxidation. , 2018, ACS applied materials & interfaces.
[14] M. V. Ganduglia-Pirovano,et al. In Situ Investigation of Methane Dry Reforming on Metal/Ceria(111) Surfaces: Metal-Support Interactions and C-H Bond Activation at Low Temperature. , 2017, Angewandte Chemie.
[15] C. Müller,et al. Molecularly Tailored Nickel Precursor and Support Yield a Stable Methane Dry Reforming Catalyst with Superior Metal Utilization. , 2017, Journal of the American Chemical Society.
[16] S. Ha,et al. Catalytic Reaction Rates Controlled by Metal Oxidation State: C-H Bond Cleavage in Methane over Nickel-Based Catalysts. , 2017, Angewandte Chemie.
[17] Liang Zeng,et al. Dry reforming of methane over Ni/La2O3 nanorod catalysts with stabilized Ni nanoparticles , 2017 .
[18] R. Bal,et al. Effect of metal-support interaction on activity and stability of Ni-CeO2 catalyst for partial oxidation of methane , 2017 .
[19] Katsuhiko Ariga,et al. Sintering-Resistant Nanoparticles in Wide-Mouthed Compartments for Sustained Catalytic Performance , 2017, Scientific Reports.
[20] K. Cao,et al. Oxide-Nanotrap-Anchored Platinum Nanoparticles with High Activity and Sintering Resistance by Area-Selective Atomic Layer Deposition. , 2017, Angewandte Chemie.
[21] C. Müller,et al. Cooperativity and Dynamics Increase the Performance of NiFe Dry Reforming Catalysts. , 2017, Journal of the American Chemical Society.
[22] Z. Wang,et al. One‐Pot Facile Fabrication of Multiple Nickel Nanoparticles Confined in Microporous Silica Giving a Multiple‐Cores@Shell Structure as a Highly Efficient Catalyst for Methane Dry Reforming , 2017 .
[23] Li Wang,et al. A Sacrificial Coating Strategy Toward Enhancement of Metal-Support Interaction for Ultrastable Au Nanocatalysts. , 2016, Journal of the American Chemical Society.
[24] S. Kawi,et al. Highly carbon resistant multicore-shell catalyst derived from Ni-Mg phyllosilicate nanotubes@silica for dry reforming of methane , 2016 .
[25] Jinlong Gong,et al. Catalytic Reforming of Oxygenates: State of the Art and Future Prospects. , 2016, Chemical reviews.
[26] R. Bal,et al. Synthesis of highly coke resistant Ni nanoparticles supported MgO/ZnO catalyst for reforming of methane with carbon dioxide , 2016 .
[27] S. Kawi,et al. Design of highly stable and selective core/yolk–shell nanocatalysts—A review , 2016 .
[28] M. V. Ganduglia-Pirovano,et al. Dry Reforming of Methane on a Highly-Active Ni-CeO2 Catalyst: Effects of Metal-Support Interactions on C-H Bond Breaking. , 2016, Angewandte Chemie.
[29] Ning Wang,et al. In Situ Confinement of Ultrasmall Pd Clusters within Nanosized Silicalite-1 Zeolite for Highly Efficient Catalysis of Hydrogen Generation. , 2016, Journal of the American Chemical Society.
[30] V. Polshettiwar,et al. Atomic Layer Deposited (ALD) TiO2 on Fibrous Nano-Silica (KCC-1) for Photocatalysis: Nanoparticle Formation and Size Quantization Effect , 2016 .
[31] Liang Zeng,et al. Efficient hydrogen production from ethanol steam reforming over La-modified ordered mesoporous Ni-based catalysts , 2016 .
[32] Yongfeng Hu,et al. A single iron site confined in a graphene matrix for the catalytic oxidation of benzene at room temperature , 2015, Science Advances.
[33] Weiqi Wang,et al. Steam reforming of methane over Ni/SiO2 catalyst with enhanced coke resistance at low steam to methane ratio , 2015 .
[34] S. Kawi,et al. Progress in Synthesis of Highly Active and Stable Nickel-Based Catalysts for Carbon Dioxide Reforming of Methane. , 2015, ChemSusChem.
[35] S. Assabumrungrat,et al. Ceria-promoted Ni/SBA-15 catalysts for ethanol steam reforming with enhanced activity and resistance to deactivation , 2015 .
[36] E. Jimenez-Izal,et al. Alloying Pt Sub-nano-clusters with Boron: Sintering Preventative and Coke Antagonist? , 2015 .
[37] Liang Zeng,et al. Recent Advances on the Design of Group VIII Base-Metal Catalysts with Encapsulated Structures , 2015 .
[38] Xiulian Pan,et al. Tailoring the Oxidation Activity of Pt Nanoclusters via Encapsulation , 2015 .
[39] Xin Du,et al. Dendritic silica particles with center-radial pore channels: promising platforms for catalysis and biomedical applications. , 2015, Small.
[40] Jianjun Liu,et al. Ni–Co/Al2O3 Bimetallic Catalysts for CH4 Steam Reforming: Elucidating the Role of Co for Improving Coke Resistance , 2014 .
[41] D. Zhao,et al. Biphase stratification approach to three-dimensional dendritic biodegradable mesoporous silica nanospheres. , 2014, Nano letters.
[42] W. Qian,et al. Preparation and characterization of a plasma treated NiMgSBA-15 catalyst for methane reforming with CO2 to produce syngas , 2013 .
[43] W. Qian,et al. Facile Route for Synthesizing Ordered Mesoporous Ni–Ce–Al Oxide Materials and Their Catalytic Performance for Methane Dry Reforming to Hydrogen and Syngas , 2013 .
[44] Wei Chen,et al. High carbon-resistance Ni/CeAlO3-Al2O3 catalyst for CH4/CO2 reforming , 2013 .
[45] Liyi Shi,et al. Coke- and sintering-resistant monolithic catalysts derived from in situ supported hydrotalcite-like films on Al wires for dry reforming of methane. , 2013, Nanoscale.
[46] Le Xu,et al. One-pot synthesis of benzamide over a robust tandem catalyst based on center radially fibrous silica encapsulated TS-1. , 2013, Chemical Communications.
[47] K. Lam,et al. Facile large-scale synthesis of monodisperse mesoporous silica nanospheres with tunable pore structure. , 2013, Journal of the American Chemical Society.
[48] Uwe Rodemerck,et al. Nickel-silicide colloid prepared under mild conditions as a versatile Ni precursor for more efficient CO2 reforming of CH4 catalysts. , 2012, Journal of the American Chemical Society.
[49] Mingbo Wu,et al. Confinement Effect of Carbon Nanotubes: Copper Nanoparticles Filled Carbon Nanotubes for Hydrogenation of Methyl Acetate , 2012 .
[50] P. Fornasiero,et al. Exceptional Activity for Methane Combustion over Modular Pd@CeO2 Subunits on Functionalized Al2O3 , 2012, Science.
[51] G. Xiao,et al. Coking- and Sintering-Resistant Palladium Catalysts Achieved Through Atomic Layer Deposition , 2012, Science.
[52] S. Norsic,et al. "Hydro-metathesis" of olefins: a catalytic reaction using a bifunctional single-site tantalum hydride catalyst supported on fibrous silica (KCC-1) Nanospheres. , 2011, Angewandte Chemie.
[53] Jingyun Ye,et al. Progresses in the Preparation of Coke Resistant Ni‐based Catalyst for Steam and CO2 Reforming of Methane , 2011 .
[54] Dongkyu Cha,et al. High-surface-area silica nanospheres (KCC-1) with a fibrous morphology. , 2010, Angewandte Chemie.
[55] Dapeng Liu,et al. MCM-41 supported nickel-based bimetallic catalysts with superior stability during carbon dioxide reforming of methane: Effect of strong metal-support interaction , 2009 .
[56] P. Serp,et al. An efficient strategy to drive nanoparticles into carbon nanotubes and the remarkable effect of confinement on their catalytic performance. , 2009, Angewandte Chemie.
[57] D. Świerczyński,et al. Steam reforming of tar from a biomass gasification process over Ni/olivine catalyst using toluene as a model compound , 2007 .
[58] S. Linic,et al. Controlling carbon surface chemistry by alloying: carbon tolerant reforming catalyst. , 2006, Journal of the American Chemical Society.
[59] J. Hill,et al. Comparison of reducibility and stability of alumina-supported Ni catalysts prepared by impregnation and co-precipitation , 2006 .
[60] Raymond J. Gorte,et al. Deactivation Mechanisms for Pd/Ceria During the Water-Gas Shift Reaction , 2002 .
[61] J. Nørskov,et al. Steam Reforming and Graphite Formation on Ni Catalysts , 2002 .
[62] R. Molina,et al. α-Alumina-Supported Nickel Catalysts Prepared from Nickel Acetylacetonate: A TPR Study , 1998 .