Immobilization of “Capping Arene” Cobalt(II) Complexes on Ordered Mesoporous Carbon for Electrocatalytic Water Oxidation
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W. Goddard | C. Musgrave | Cheng-Jun Sun | Sooyeon Hwang | D. Dickie | A. Schnegg | Sen Zhang | Grayson Johnson | Chang Liu | T. Gunnoe | Ana M. Geer | S. Chabbra | Hua Zhou | Shunyan Gu | Christopher Webber
[1] S. Fukuzumi,et al. Identifying Intermediates in Electrocatalytic Water Oxidation with a Manganese Corrole Complex. , 2021, Journal of the American Chemical Society.
[2] W. Goddard,et al. Rhodium and Iridium Complexes Bearing “Capping Arene” Ligands: Synthesis and Characterization , 2021, Organometallics.
[3] W. Goddard,et al. Noncovalent Immobilization of Pentamethylcyclopentadienyl Iridium Complexes on Ordered Mesoporous Carbon for Electrocatalytic Water Oxidation , 2021, Small Science.
[4] W. Goddard,et al. Electrocatalytic Water Oxidation by a Trinuclear Copper(II) Complex , 2021, ACS Catalysis.
[5] H. Tüysüz,et al. Principles of Water Electrolysis and Recent Progress in Cobalt‐, Nickel‐, and Iron‐Based Oxides for the Oxygen Evolution Reaction , 2021, Angewandte Chemie.
[6] Haotian Wang,et al. Stability challenges of electrocatalytic oxygen evolution reaction: From mechanistic understanding to reactor design , 2021, Joule.
[7] A. Llobet,et al. Consecutive Ligand‐Based Electron Transfer in New Molecular Copper‐Based Water Oxidation Catalysts , 2021, Angewandte Chemie.
[8] W. Goddard,et al. Functionalization of RhIII–Me Bonds: Use of “Capping Arene” Ligands to Facilitate Me–X Reductive Elimination , 2021, Organometallics.
[9] N. Queyriaux. Redox-Active Ligands in Electroassisted Catalytic H+ and CO2 Reductions: Benefits and Risks , 2021 .
[10] Bin Zhao,et al. Enzyme-Inspired Iron Porphyrins for Improved Electrocatalytic Oxygen Reduction and Evolution Reactions. , 2021, Angewandte Chemie.
[11] Ying Wang,et al. Heterogeneous Water Oxidation Catalysts for Molecular Anodes and Photoanodes , 2021 .
[12] W. Goddard,et al. Oxygen evolution reaction over catalytic single-site Co in a well-defined brookite TiO2 nanorod surface , 2020, Nature Catalysis.
[13] A. Mahammed,et al. Elucidation of Factors That Govern the 2e-/2H+ vs 4e-/4H+ Selectivity of Water Oxidation by a Cobalt Corrole. , 2020, Journal of the American Chemical Society.
[14] J. Reek,et al. Homogeneous Catalysts Based on First‐Row Transition‐Metals for Electrochemical Water Oxidation , 2020, ChemSusChem.
[15] Shaomin Liu,et al. Catalysis of a Single Transition Metal Site for Water Oxidation: From Mononuclear Molecules to Single Atoms , 2019, Advanced materials.
[16] Can Li,et al. Water Oxidation Catalysts for Artificial Photosynthesis , 2019, Advanced materials.
[17] Qiuyun Mao,et al. Theoretical Study of the Mechanisms of Two Copper Water Oxidation Electrocatalysts with Bipyridine Ligands , 2019, ACS Catalysis.
[18] J. Guan,et al. Mono-/Multinuclear Water Oxidation Catalysts. , 2019, ChemSusChem.
[19] W. Hu,et al. Charge redistribution of Co on cobalt (II) oxide surface for enhanced oxygen evolution electrocatalysis , 2019, Nano Energy.
[20] Carolina Gimbert-Suriñach,et al. Electronic, mechanistic, and structural factors that influence the performance of molecular water oxidation catalysts anchored on electrode surfaces , 2019, Current Opinion in Electrochemistry.
[21] Zaki N. Zahran,et al. Recent Advances in the Development of Molecular Catalyst-Based Anodes for Water Oxidation toward Artificial Photosynthesis. , 2019, ChemSusChem.
[22] Carolina Gimbert-Suriñach,et al. The development of molecular water oxidation catalysts , 2019, Nature Reviews Chemistry.
[23] Rui Cao,et al. Convenient Immobilization of Cobalt Corroles on Carbon Nanotubes through Covalent Bonds for Electrocatalytic Hydrogen and Oxygen Evolution Reactions. , 2019, ChemSusChem.
[24] Charles C. L. McCrory,et al. Imidazole for Pyridine Substitution Leads to Enhanced Activity Under Milder Conditions in Cobalt Water Oxidation Electrocatalysis. , 2018, Inorganic chemistry.
[25] Can Li,et al. Artificial photosynthesis systems for catalytic water oxidation , 2019, Water Oxidation Catalysts.
[26] W. Goddard,et al. Catalytic Synthesis of Superlinear Alkenyl Arenes Using a Rh(I) Catalyst Supported by a "Capping Arene" Ligand: Access to Aerobic Catalysis. , 2018, Journal of the American Chemical Society.
[27] E. Fred Schubert,et al. The electrification of energy: Long-term trends and opportunities , 2018 .
[28] W. Goddard,et al. Synergy between Fe and Ni in the optimal performance of (Ni,Fe)OOH catalysts for the oxygen evolution reaction , 2018, Proceedings of the National Academy of Sciences.
[29] H. Schlegel,et al. Immobilization of an Amphiphilic Molecular Cobalt Catalyst on Carbon Black for Ligand-Assisted Water Oxidation. , 2018, Inorganic chemistry.
[30] R. Schlögl,et al. Cobalt‐Bridged Ionic Liquid Polymer on a Carbon Nanotube for Enhanced Oxygen Evolution Reaction Activity , 2018, Angewandte Chemie.
[31] Lei Jiao,et al. Redox-Active Ligand Assisted Multielectron Catalysis: A Case of CoIII Complex as Water Oxidation Catalyst. , 2018, Journal of the American Chemical Society.
[32] A. Mahammed,et al. Reactive Intermediates Involved in Cobalt Corrole Catalyzed Water Oxidation (and Oxygen Reduction). , 2018, Inorganic chemistry.
[33] A. Das,et al. Surface Immobilization of Molecular Electrocatalysts for Energy Conversion. , 2017, Chemistry.
[34] Hussein A. Younus,et al. A Robust Molecular Catalyst Generated In Situ for Photo- and Electrochemical Water Oxidation. , 2017, ChemSusChem.
[35] A. Llobet,et al. Single Electron Transfer Steps in Water Oxidation Catalysis. Redefining the Mechanistic Scenario , 2017 .
[36] William A. Goddard,et al. The Reaction Mechanism with Free Energy Barriers at Constant Potentials for the Oxygen Evolution Reaction at the IrO(2) (110) Surface. , 2017, Journal of the American Chemical Society.
[37] Licheng Sun,et al. Re-Investigation of Cobalt Porphyrin for Electrochemical Water Oxidation on FTO Surface: Formation of CoOx as Active Species , 2017 .
[38] T. Lu,et al. Reinvestigation of Water Oxidation Catalyzed by a Dinuclear Cobalt Polypyridine Complex: Identification of CoOx as a Real Heterogeneous Catalyst , 2016 .
[39] W. Goddard,et al. Transition-Metal-Mediated Nucleophilic Aromatic Substitution with Acids , 2016 .
[40] K. Takanabe,et al. Simultaneous Reduction of CO2 and Splitting of H2O by a Single Immobilized Cobalt Phthalocyanine Electrocatalyst , 2016 .
[41] James D. Blakemore,et al. Molecular Catalysts for Water Oxidation. , 2015, Chemical reviews.
[42] Dong Yang,et al. Highly ordered mesoporous few-layer graphene frameworks enabled by fe3 o4 nanocrystal superlattices. , 2015, Angewandte Chemie.
[43] J. Gałęzowska,et al. Cobalt catalyst with a proton-responsive ligand for water oxidation. , 2015, Chemistry.
[44] M. Baik,et al. How a [Co(IV) a bond and a half O](2+) fragment oxidizes water: involvement of a biradicaloid [Co(II)-(⋅O⋅)](2+) species in forming the O-O bond. , 2015, ChemSusChem.
[45] W. Goddard,et al. Rhodium bis(quinolinyl)benzene complexes for methane activation and functionalization. , 2015, Chemistry.
[46] K. Takanabe,et al. Perfluorinated Cobalt Phthalocyanine Effectively Catalyzes Water Electrooxidation , 2015 .
[47] W. Goddard,et al. Long-range C-H bond activation by Rh(III)-carboxylates. , 2014, Journal of the American Chemical Society.
[48] Jing Zhang,et al. Jaguar: A high-performance quantum chemistry software program with strengths in life and materials sciences , 2013 .
[49] J. Groves,et al. Efficient water oxidation catalyzed by homogeneous cationic cobalt porphyrins with critical roles for the buffer base , 2013, Proceedings of the National Academy of Sciences.
[50] A. R. Parent,et al. Cobalt porphyrins as homogeneous catalysts for water oxidation. , 2013, Chemical communications.
[51] Adam J. Rieth,et al. Water oxidation and oxygen monitoring by cobalt-modified fluorine-doped tin oxide electrodes. , 2013, Journal of the American Chemical Society.
[52] C. Berlinguette,et al. Interrogation of electrocatalytic water oxidation mediated by a cobalt complex. , 2012, Chemical communications.
[53] Alexis T Bell,et al. Comparison of cobalt-based nanoparticles as electrocatalysts for water oxidation. , 2011, ChemSusChem.
[54] James D. Blakemore,et al. Distinguishing homogeneous from heterogeneous catalysis in electrode-driven water oxidation with molecular iridium complexes. , 2011, Journal of the American Chemical Society.
[55] D. Nocera,et al. Electocatalytic water oxidation by cobalt(III) hangman β-octafluoro corroles. , 2011, Journal of the American Chemical Society.
[56] C. Berlinguette,et al. Electrochemical evidence for catalytic water oxidation mediated by a high-valent cobalt complex. , 2011, Chemical communications.
[57] S. Grimme,et al. A consistent and accurate ab initio parametrization of density functional dispersion correction (DFT-D) for the 94 elements H-Pu. , 2010, The Journal of chemical physics.
[58] Daniel G. Nocera,et al. In Situ Formation of an Oxygen-Evolving Catalyst in Neutral Water Containing Phosphate and Co2+ , 2008, Science.
[59] Richard L Martin,et al. Revised Basis Sets for the LANL Effective Core Potentials. , 2008, Journal of chemical theory and computation.
[60] Donald G. Truhlar,et al. The M06 suite of density functionals for main group thermochemistry, thermochemical kinetics, noncovalent interactions, excited states, and transition elements: two new functionals and systematic testing of four M06 functionals and 12 other functionals , 2008 .
[61] N. Lewis,et al. Powering the planet: Chemical challenges in solar energy utilization , 2006, Proceedings of the National Academy of Sciences.
[62] Suning Wang,et al. Regioselective C−H Activation of Toluene with a 1,2-Bis(N-7-azaindolyl)benzene Platinum(II) Complex , 2005 .
[63] Ruhong Zhou,et al. Poisson−Boltzmann Analytical Gradients for Molecular Modeling Calculations , 1999 .
[64] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[65] William A. Goddard,et al. Ab Initio Effective Potentials for Use in Molecular Calculations , 1972 .