Domino catalysis for selective dehydrogenation of ethane with shifted thermodynamic equilibrium

[1]  Zhongmin Liu,et al.  Atomic Insight into the Local Structure and Microenvironment of Isolated Co-Motifs in MFI Zeolite Frameworks for Propane Dehydrogenation. , 2022, Journal of the American Chemical Society.

[2]  S. Furukawa,et al.  Ternary platinum–cobalt–indium nanoalloy on ceria as a highly efficient catalyst for the oxidative dehydrogenation of propane using CO2 , 2022, Nature Catalysis.

[3]  Akash N. Biswas,et al.  Can CO2-assisted alkane dehydrogenation lead to negative CO2 emissions? , 2022, Joule.

[4]  J. Grunwaldt,et al.  In situ formation of ZnOx species for efficient propane dehydrogenation , 2021, Nature.

[5]  Q. Guo,et al.  Core-shell Na2WO4/CuMn2O4 oxygen carrier with high oxygen capacity for chemical looping oxidative dehydrogenation of ethane , 2021 .

[6]  Yue M. Liu,et al.  Atomically Dispersed Co2+ Sites Incorporated into a Silicalite-1 Zeolite Framework as a High-Performance and Coking-Resistant Catalyst for Propane Nonoxidative Dehydrogenation to Propylene. , 2021, ACS applied materials & interfaces.

[7]  Xiaodong Wang,et al.  Near 100% ethene selectivity achieved by tailoring dual active sites to isolate dehydrogenation and oxidation , 2021, Nature Communications.

[8]  Matteo Monai,et al.  Propane to olefins tandem catalysis: a selective route towards light olefins production. , 2021, Chemical Society reviews.

[9]  Ali Hussain Motagamwala,et al.  Stable and selective catalysts for propane dehydrogenation operating at thermodynamic limit , 2021, Science.

[10]  Fanxing Li,et al.  Selective hydrogen combustion as an effective approach for intensified chemical production via the chemical looping strategy , 2021, Fuel Processing Technology.

[11]  M. Stamatakis,et al.  First-principles design of a single-atom–alloy propane dehydrogenation catalyst , 2021, Science.

[12]  Justin M. Notestein,et al.  Tandem In2O3-Pt/Al2O3 catalyst for coupling of propane dehydrogenation to selective H2 combustion , 2021, Science.

[13]  Chunmei Zhou,et al.  Recent progress in heterogeneous metal and metal oxide catalysts for direct dehydrogenation of ethane and propane. , 2021, Chemical Society reviews.

[14]  Zili Wu,et al.  A tailored multi-functional catalyst for ultra-efficient styrene production under a cyclic redox scheme , 2021, Nature Communications.

[15]  Jinlong Gong,et al.  Propane dehydrogenation: catalyst development, new chemistry, and emerging technologies. , 2021, Chemical Society reviews.

[16]  Anne M. LaPointe,et al.  Polyethylene upcycling to long-chain alkylaromatics by tandem hydrogenolysis/aromatization , 2020, Science.

[17]  P. R. Westmoreland,et al.  Effect of Sodium Tungstate Promoter on the Reduction Kinetics of CaMn0.9Fe0.1O3 for Chemical Looping – Oxidative Dehydrogenation of Ethane , 2020 .

[18]  Hang Zhou,et al.  Coking-resistant iron catalyst in ethane dehydrogenation achieved through siliceous zeolite modulation. , 2020, Journal of the American Chemical Society.

[19]  Jinlong Gong,et al.  Coverage-dependent Behaviors of Vanadium Oxides for Chemical Looping Oxidative Dehydrogenation. , 2020, Angewandte Chemie.

[20]  Fanxing Li,et al.  Reduction Kinetics of Perovskite Oxides for Selective Hydrogen Combustion in the Context of Olefin Production , 2020, Energy Technology.

[21]  K. Zhao,et al.  A molten carbonate shell modified perovskite redox catalyst for anaerobic oxidative dehydrogenation of ethane , 2020, Science Advances.

[22]  C. Müller,et al.  Chemical looping beyond combustion – a perspective , 2020, Energy & Environmental Science.

[23]  Takashi Toyao,et al.  Isolated Indium-hydrides in CHA Zeolites: Speciation and Catalysis for Non-oxidative Dehydrogenation of Ethane. , 2020, Journal of the American Chemical Society.

[24]  C. Khosla,et al.  Evolution and Diversity of Assembly-Line Polyketide Synthases , 2019, Chemical reviews.

[25]  Jun Luo,et al.  Modulating Lattice Oxygen in Dual-functional Mo-V-O Mixed Oxides for Chemical Looping Oxidative Dehydrogenation. , 2019, Journal of the American Chemical Society.

[26]  B. Chi,et al.  Lanthanum manganite-based perovskite as a catalyst for co-production of ethylene and hydrogen by ethane dehydrogenation , 2019, Journal of Catalysis.

[27]  A. Corma,et al.  Regioselective generation and reactivity control of subnanometric platinum clusters in zeolites for high-temperature catalysis , 2019, Nature Materials.

[28]  Zili Wu,et al.  Effects of Sodium and Tungsten Promoters on Mg6MnO8-Based Core–Shell Redox Catalysts for Chemical Looping—Oxidative Dehydrogenation of Ethane , 2019, ACS Catalysis.

[29]  J. Bae,et al.  Recent Advances in Direct Synthesis of Value‐Added Aromatic Chemicals from Syngas by Cascade Reactions over Bifunctional Catalysts , 2019, Advanced materials.

[30]  Hailong Liu,et al.  Highly Selective Conversion of Carbon Dioxide to Aromatics over Tandem Catalysts , 2019, Joule.

[31]  Fanxing Li,et al.  Manganese silicate based redox catalysts for greener ethylene production via chemical looping – oxidative dehydrogenation of ethane , 2018, Applied Catalysis B: Environmental.

[32]  F. Tao,et al.  Subsurface catalysis-mediated selectivity of dehydrogenation reaction , 2018, Science Advances.

[33]  Fanxing Li,et al.  Manganese‐containing redox catalysts for selective hydrogen combustion under a cyclic redox scheme , 2018 .

[34]  Xiulian Pan,et al.  Enhanced ethylene selectivity and stability of Mo/ZSM5 upon modification with phosphorus in ethane dehydrogenation , 2018 .

[35]  Fanxing Li,et al.  Effect of Promoters on Manganese-Containing Mixed Metal Oxides for Oxidative Dehydrogenation of Ethane via a Cyclic Redox Scheme , 2017 .

[36]  Evan C. Wegener,et al.  Zinc Promotion of Platinum for Catalytic Light Alkane Dehydrogenation: Insights into Geometric and Electronic Effects , 2017 .

[37]  Fanxing Li,et al.  Li-Promoted LaxSr2–xFeO4−δ Core–Shell Redox Catalysts for Oxidative Dehydrogenation of Ethane under a Cyclic Redox Scheme , 2016 .

[38]  J. M. Serra,et al.  Direct conversion of methane to aromatics in a catalytic co-ionic membrane reactor , 2016, Science.

[39]  R. Schlögl,et al.  Selective Alkane Oxidation by Manganese Oxide: Site Isolation of MnOx Chains at the Surface of MnWO4 Nanorods. , 2016, Angewandte Chemie.

[40]  Wenming Tong,et al.  Kinetic Control of MnWO4 Nanoparticles for Tailored Structural Properties , 2010 .

[41]  V. Galvita,et al.  Ethane dehydrogenation on Pt/Mg(Al)O and PtSn/Mg(Al)O catalysts , 2010 .

[42]  P. Harlick,et al.  Non-oxidative conversion of ethane to ethylene over transition metals supported on Mg–Al mixed oxide: Preliminary screening of catalytic activity and coking ability , 2007 .

[43]  Amy H. Roy,et al.  Catalytic Alkane Metathesis by Tandem Alkane Dehydrogenation-Olefin Metathesis , 2006, Science.

[44]  F. Kapteijn,et al.  Alumina-Supported Manganese Oxide Catalysts: I. Characterization: Effect of Precursor and Loading , 1994 .

[45]  D. Zahn,et al.  Vibrational spectroscopy of bulk and supported manganese oxides , 1999 .