Co-based MOF derived metal catalysts: from nano-level to atom-level
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[1] Wei Wu,et al. Nanoparticles and single atoms of cobalt synergistically enabled low-temperature reductive amination of carbonyl compounds , 2022, Chemical science.
[2] Yu Wang,et al. Carboxylate-assisted ZIF-derived Co nanoclusters anchoring hierarchically porous carbon as high-efficient zinc-air batteries cathode catalysts , 2022, Journal of Alloys and Compounds.
[3] R. Amal,et al. Electronic Structure Engineering of Single‐Atom Ru Sites via Co–N4 Sites for Bifunctional pH‐Universal Water Splitting , 2022, Advanced materials.
[4] Weiguo Song,et al. Breaking the activity limitation of iridium single-atom catalyst in hydrogenation of quinoline with synergistic nanoparticles catalysis , 2022, Nano Research.
[5] Zhuojie Xiao,et al. A two-dimensional zeolitic imidazolate framework loaded with an acrylate-substituted oxoiron cluster as efficient electrocatalysts for the oxygen evolution reaction , 2022, New Journal of Chemistry.
[6] R. Psaro,et al. From Metal Vapor to Supported Single Atoms, Clusters and Nanoparticles: Recent Advances to Heterogeneous Catalysts , 2021, Inorganica Chimica Acta.
[7] J. Shui,et al. Catalysis stability enhancement of Fe/Co dual-atom site via phosphorus coordination for proton exchange membrane fuel cell , 2021, Nano Research.
[8] Qinglei Meng,et al. CO-Tolerant PEMFC Anodes Enabled by Synergistic Catalysis between Iridium Single-Atom Sites and Nanoparticles. , 2021, Angewandte Chemie.
[9] Xuemei Li,et al. Synergistic Catalysis of the Synthesis of Ammonia with Co-Based Catalysts and Plasma: From Nanoparticles to a Single Atom. , 2021, ACS applied materials & interfaces.
[10] R. Jin,et al. Atomically precise metal nanoclusters meet metal-organic frameworks , 2021, iScience.
[11] Ying Yang,et al. Electron-Rich Ruthenium Single-Atom Alloy for Aqueous Levulinic Acid Hydrogenation , 2021, ACS Catalysis.
[12] Fuqin Zheng,et al. Homogeneous Distribution of Pt16(C4O4SH5)26 Clusters in ZIF-67 for Efficient Hydrogen Generation and Oxygen Reduction. , 2021, ACS applied materials & interfaces.
[13] Tian-Fu Liu,et al. Precise Construction of Stable Bimetallic Metal-Organic Frameworks with Single-Site Ti(IV) Incorporation in Nodes for Efficient Photocatalytic Oxygen Evolution , 2021, CCS Chemistry.
[14] H. Ullah,et al. Electrochemical Reduction of CO2: A Review of Cobalt Based Catalysts for Carbon Dioxide Conversion to Fuels , 2021, Nanomaterials.
[15] Qinghua Zhang,et al. Decarboxylation-Induced Defects in MOF-Derived Single Co Atom@Carbon Electrocatalysts for Efficient Oxygen Reduction. , 2021, Angewandte Chemie.
[16] D. Hildebrandt,et al. The effect of hydrophobicity on SiO2–supported Co catalysts in Fischer-Tropsch synthesis , 2021, Fuel.
[17] I. Díaz,et al. Non-noble MNP@MOF materials: synthesis and applications in heterogeneous catalysis. , 2021, Dalton transactions.
[18] Tao Yu,et al. ZIF-67-based catalysts for oxygen evolution reaction. , 2021, Nanoscale.
[19] Jun Lu,et al. 3d-Orbital Occupancy Regulated Ir-Co Atomic Pair Toward Superior Bifunctional Oxygen Electrocatalysis , 2021, ACS Catalysis.
[20] Yadong Li,et al. Atomic Co/Ni dual sites with N/P-coordination as bifunctional oxygen electrocatalyst for rechargeable zinc-air batteries , 2021, Nano Research.
[21] G. Wang,et al. Bi-functional electrocatalysis through synergetic coupling strategy of atomically dispersed Fe and Co active sites anchored on 3D nitrogen-doped carbon sheets for Zn-air battery , 2021 .
[22] Shaojun Guo,et al. 3D star-like atypical hybrid MOF derived single-atom catalyst boosts oxygen reduction catalysis , 2021 .
[23] Xin Ma,et al. A Facile Reaction Strategy for the Synthesis of MOF-Based Pine-Needle-Like Nanocluster Hierarchical Structure for Efficient Overall Water Splitting. , 2021, Inorganic chemistry.
[24] Shuai Wang,et al. Single‐Atom Catalysts: Synthesis Strategies, Catalytic Applications, and Performance Regulation of Single‐Atom Catalysts (Adv. Funct. Mater. 12/2021) , 2021, Advanced Functional Materials.
[25] S. Du,et al. Ru1Con Single-Atom Alloy for Enhancing Fischer–Tropsch Synthesis , 2021 .
[26] Wee‐Jun Ong,et al. A highly efficient Fenton-like catalyst based on isolated diatomic Fe-Co anchored on N-doped porous carbon , 2021 .
[27] Gaofeng Zeng,et al. Atomic Co-N4 and Co nanoparticles confined in COF@ZIF-67 derived core-shell carbon frameworks: Bifunctional non-precious metal catalysts toward ORR and HER , 2021, Journal of Materials Chemistry A.
[28] W. Jin,et al. Ultrathin 2D catalysts with N-coordinated single Co atom outside Co cluster for highly efficient Zn-air battery , 2021 .
[29] Yadong Li,et al. Atomic-level modulation of electronic density of metal-organic frameworks-derived Co single-atom sites to enhance oxygen reduction performance. , 2020, Angewandte Chemie.
[30] Hong Jiang,et al. Selective hydrogenation of nitroarenes under mild conditions by the optimization of active sites in a well defined Co@NC catalyst , 2020, Green Chemistry.
[31] Junling Lu,et al. A Review on Particle Size Effect in Metal‐Catalyzed Heterogeneous Reactions , 2020 .
[32] Yang Lou,et al. Metal-support interaction for heterogeneous catalysis: from nanoparticles to single atoms , 2020 .
[33] Qiang Xu,et al. Fabricating Dual-Atom Iron Catalysts for Efficient Oxygen Evolution Reaction: A Heteroatom Modulator Approach. , 2020, Angewandte Chemie.
[34] Qiang Xu,et al. From metal–organic frameworks to single/dual-atom and cluster metal catalysts for energy applications , 2020 .
[35] J. Guan,et al. Single‐Atom Catalysts for Electrocatalytic Applications , 2020, Advanced Functional Materials.
[36] Yangguang Li,et al. Keggin‐Type Polyoxometalate‐Based ZIF‐67 for Enhanced Photocatalytic Nitrogen Fixation , 2020 .
[37] Qiang Xu,et al. Metal-Organic Framework-Based Catalysts with Single Metal Sites. , 2020, Chemical reviews.
[38] Yadong Li,et al. In-Situ Phosphatizing of Triphenylphosphine Encapsulated within Metal-Organic-Frameworks to Design Atomic Co1-P1N3 Interfacial Structure for Promoting Catalytic Performance. , 2020, Journal of the American Chemical Society.
[39] Jianhong Liu,et al. Highly efficient utilization of single atoms via constructing 3D and free-standing electrodes for CO2 reduction with ultrahigh current density , 2020 .
[40] J. Gascón,et al. Metal-Organic Frameworks in Heterogeneous Catalysis: Recent Progress, New Trends, and Future Perspectives. , 2020, Chemical reviews.
[41] John Wang,et al. Single atom catalysts: a surface heterocompound perspective. , 2020, Nanoscale horizons.
[42] Salete S. Balula,et al. Oxygen Evolution Reaction Electrocatalytic Improvement in POM@ZIF Nanocomposites: A Bidirectional Synergistic Effect , 2020, ACS Applied Energy Materials.
[43] Yangguang Li,et al. New applications of old inorganic oxygen clusters: Keggin-type polyoxometalates PMo12-XVX (X = 0, 1, 2, 3, 8) based ZIF-67 for enhanced photocatalytic nitrogen fixation. , 2020, ChemSusChem.
[44] Xiujian Zhao,et al. Cage-confinement pyrolysis route to size-controlled molybdenum-based oxygen electrode catalysts: From isolated atoms to clusters and nanoparticles , 2020 .
[45] Tao Zhang,et al. Selective Hydrogenation over Supported Metal Catalysts: From Nanoparticles to Single Atoms. , 2019, Chemical reviews.
[46] Qi Wang,et al. State of the Art and Prospects in Metal-Organic Framework (MOF)-Based and MOF-Derived Nanocatalysis. , 2020, Chemical reviews.
[47] Yunhui Huang,et al. High-performance single atom bifunctional oxygen catalysts derived from ZIF-67 superstructures , 2019, Nano Energy.
[48] Yadong Li,et al. 2D MOF induced accessible and exclusive Co single sites for an efficient O-silylation of alcohols with silanes. , 2019, Chemical communications.
[49] W. Hu,et al. Generation of Nanoparticle, Atomic-Cluster, and Single-Atom Cobalt Catalysts from Zeolitic Imidazole Frameworks by Spatial Isolation and Their Use in Zinc-Air Batteries. , 2019, Angewandte Chemie.
[50] Q. Guo,et al. Synthesis of MOF-derived Co@C composites and application for efficient hydrolysis of sodium borohydride , 2019, Applied Surface Science.
[51] Tianxi Liu,et al. Cobalt nanoparticle-embedded nitrogen-doped carbon/carbon nanotube frameworks derived from a metal–organic framework for tri-functional ORR, OER and HER electrocatalysis , 2019, Journal of Materials Chemistry A.
[52] Song Gao,et al. Puffing Up Energetic Metal-Organic Frameworks to Large Carbon Networks with Hierarchical Porosity and Atomically Dispersed Metal Sites. , 2019, Angewandte Chemie.
[53] Evan C. Wegener,et al. Highly active atomically dispersed CoN4 fuel cell cathode catalysts derived from surfactant-assisted MOFs: carbon-shell confinement strategy , 2019, Energy & Environmental Science.
[54] Xiaowang Liu,et al. SiO2-Encompassed Co@N-Doped Porous Carbon Assemblies as Recyclable Catalysts for Efficient Hydrolysis of Ammonia Borane. , 2019, Langmuir : the ACS journal of surfaces and colloids.
[55] Yue Lin,et al. Regulating the coordination environment of Co single atoms for achieving efficient electrocatalytic activity in CO2 reduction , 2019, Applied Catalysis B: Environmental.
[56] W. Liu,et al. Synergistic effect of well-defined dual sites boosting the oxygen reduction reaction , 2018 .
[57] S. Kegnæs,et al. Hydrolytic dehydrogenation of ammonia borane over ZIF‐67 derived Co nanoparticle catalysts , 2018 .
[58] W. Liu,et al. Interfacial coupling between noble metal nanoparticles and metal-organic frameworks for enhanced catalytic activity. , 2018, Nanoscale.
[59] Qiang Xu,et al. Metal–Organic Frameworks as Platforms for Catalytic Applications , 2018, Advanced materials.
[60] Haijun Wu,et al. Single Co Atoms Anchored in Porous N-Doped Carbon for Efficient Zinc−Air Battery Cathodes , 2018, ACS Catalysis.
[61] Christopher L. Brown,et al. Coordination of Atomic Co-Pt Coupling Species at Carbon Defects as Active Sites for Oxygen Reduction Reaction. , 2018, Journal of the American Chemical Society.
[62] Wei Zhang,et al. Co-Ag alloy protected by nitrogen doped carbon as highly efficient and chemoselective catalysts for the hydrogenation of halogenated nitrobenzenes. , 2018, Journal of colloid and interface science.
[63] Hongyan He,et al. Cobalt Single Atoms Immobilized N-Doped Carbon Nanotubes for Enhanced Bifunctional Catalysis toward Oxygen Reduction and Oxygen Evolution Reactions , 2018, ACS Applied Energy Materials.
[64] Yong Yang,et al. Ethyne-Reducing Metal–Organic Frameworks to Control Fabrications of Core/shell Nanoparticles as Catalysts , 2018, ACS Catalysis.
[65] Yuan Ha,et al. Ultrafine Co Nanoparticles Encapsulated in Carbon‐Nanotubes‐Grafted Graphene Sheets as Advanced Electrocatalysts for the Hydrogen Evolution Reaction , 2018, Advanced materials.
[66] Zheng Jiang,et al. Bifunctional Nitrogen and Cobalt Codoped Hollow Carbon for Electrochemical Syngas Production , 2018, Advanced science.
[67] Christina T. Lollar,et al. Formation of a Highly Reactive Cobalt Nanocluster Crystal within a Highly Negatively Charged Porous Coordination Cage. , 2018, Angewandte Chemie.
[68] D. Cao,et al. A universal principle for a rational design of single-atom electrocatalysts , 2018, Nature Catalysis.
[69] Avelino Corma,et al. Metal Catalysts for Heterogeneous Catalysis: From Single Atoms to Nanoclusters and Nanoparticles , 2018, Chemical reviews.
[70] Liyi Shi,et al. Tuning the dimensions and structures of nitrogen-doped carbon nanomaterials derived from sacrificial g-C3N4/metal–organic frameworks for enhanced electrocatalytic oxygen reduction , 2018 .
[71] Zhen Liu,et al. Total Water Splitting Catalyzed by Co@Ir Core–Shell Nanoparticles Encapsulated in Nitrogen-Doped Porous Carbon Derived from Metal–Organic Frameworks , 2018 .
[72] Yuyan Shao,et al. Nitrogen‐Coordinated Single Cobalt Atom Catalysts for Oxygen Reduction in Proton Exchange Membrane Fuel Cells , 2018, Advanced materials.
[73] Qianwang Chen,et al. Tuning the Activity of Carbon for Electrocatalytic Hydrogen Evolution via an Iridium‐Cobalt Alloy Core Encapsulated in Nitrogen‐Doped Carbon Cages , 2018, Advanced materials.
[74] Jinlong Yang,et al. Regulation of Coordination Number over Single Co Sites: Triggering the Efficient Electroreduction of CO2. , 2018, Angewandte Chemie.
[75] Kui Shen,et al. Nanoreactor of MOF-Derived Yolk–Shell Co@C–N: Precisely Controllable Structure and Enhanced Catalytic Activity , 2018 .
[76] Yibo Dou,et al. Pd@ZIF-67 Derived Recyclable Pd-Based Catalysts with Hierarchical Pores for High-Performance Heck Reaction , 2018 .
[77] Lichao Gao,et al. DUT‐58 (Co) Derived Synthesis of Co Clusters as Efficient Oxygen Reduction Electrocatalyst for Zinc–Air Battery , 2017, Global challenges.
[78] F. Kapteijn,et al. Single cobalt sites in mesoporous N-doped carbon matrix for selective catalytic hydrogenation of nitroarenes , 2018 .
[79] L. Gu,et al. Isolated Fe and Co dual active sites on nitrogen-doped carbon for a highly efficient oxygen reduction reaction. , 2018, Chemical communications.
[80] Hongfei Lin,et al. Nanoparticle/Metal–Organic Framework Composites for Catalytic Applications: Current Status and Perspective , 2017, Molecules.
[81] Yadong Li,et al. Design of N-Coordinated Dual-Metal Sites: A Stable and Active Pt-Free Catalyst for Acidic Oxygen Reduction Reaction. , 2017, Journal of the American Chemical Society.
[82] E. Hensen,et al. Mechanism of Cobalt-Catalyzed CO Hydrogenation: 2. Fischer–Tropsch Synthesis , 2017, ACS catalysis.
[83] Alessandro Hugo Monteverde Videla,et al. Kinetics of Oxygen Electroreduction on Me–N–C (Me = Fe, Co, Cu) Catalysts in Acidic Medium: Insights on the Effect of the Transition Metal , 2017 .
[84] Lan-sun Zheng,et al. Ternary Alloys Encapsulated within Different MOFs via a Self-Sacrificing Template Process: A Potential Platform for the Investigation of Size-Selective Catalytic Performances. , 2017, Small.
[85] F. Kapteijn,et al. Metal–Organic Framework Mediated Cobalt/Nitrogen‐Doped Carbon Hybrids as Efficient and Chemoselective Catalysts for the Hydrogenation of Nitroarenes , 2017 .
[86] L. Mai,et al. Ultrasmall cobalt nanoparticles supported on nitrogen-doped porous carbon nanowires for hydrogen evolution from ammonia borane , 2017 .
[87] W. Xing,et al. Pd nanoparticles supported on N-doped porous carbons derived from ZIF-67: Enhanced catalytic performance in phenol hydrogenation , 2017 .
[88] C. Campbell,et al. Energy of Supported Metal Catalysts: From Single Atoms to Large Metal Nanoparticles , 2015 .
[89] Y. Piñeiro,et al. Metallic Clusters: Theoretical Background, Properties and Synthesis in Microemulsions , 2014 .
[90] S. Liao,et al. Effect of Transition Metals on the Structure and Performance of the Doped Carbon Catalysts Derived From Polyaniline and Melamine for ORR Application , 2014 .
[91] A. Corma,et al. Theoretical and Experimental Insights into the Origin of the Catalytic Activity of Subnanometric Gold Clusters : Attempts to Predict Reactivity with Clusters and Nanoparticles of Gold MERCEDES BORONAT , , 2013 .
[92] Jianbo Wu,et al. Surface lattice-engineered bimetallic nanoparticles and their catalytic properties. , 2012, Chemical Society reviews.
[93] J. Nørskov,et al. Insights into the reactivity of supported Au nanoparticles: combining theory and experiments , 2007 .
[94] J. Soler,et al. Trends in the structure and bonding of noble metal clusters , 2004 .
[95] E. Coronado,et al. The Optical Properties of Metal Nanoparticles: The Influence of Size, Shape, and Dielectric Environment , 2003 .
[96] H. Freund,et al. Catalytic activity and poisoning of specific sites on supported metal nanoparticles. , 2002, Angewandte Chemie.
[97] K. J. Taylor,et al. Ultraviolet photoelectron spectra of coinage metal clusters , 1992 .
[98] Chengfeng Du,et al. Tuning the reversible chemisorption of hydroxyl ions to promote the electrocatalysis on ultrathin metal-organic framework nanosheets , 2022 .