Main Group Tin Single Atom Catalyst Supported by C5N Monolayer for Oxygen Evolution Reactions
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Chenze Qi | Yijun Du | Chengxin Wang | Yan Li | Zhen Yang
[1] M. Mavrikakis,et al. Insights into the Oxygen Evolution Reaction on Graphene-Based Single-Atom Catalysts from First-Principles-Informed Microkinetic Modeling , 2023, ACS Catalysis.
[2] M. A. Gilani,et al. First row transition metal doped B12P12 and Al12P12 nanocages as excellent single atom catalysts for the hydrogen evolution reaction , 2023, International Journal of Hydrogen Energy.
[3] M. A. Gilani,et al. Anchoring the late first row transition metals with B12P12 nanocage to act as single atom catalysts toward oxygen evolution reaction (OER) , 2023, Materials Science in Semiconductor Processing.
[4] Chenze Qi,et al. Single Atom Catalysts Supported on Metallic C5N Monolayers for Oxygen Reduction/Evolution Reactions with More Active Sites than Loaded Metal Atoms , 2022, Applied Surface Science.
[5] Yuen Wu,et al. Structural revolution of atomically dispersed Mn sites dictates oxygen reduction performance , 2021, Nano Research.
[6] Faizan Ullah,et al. High performance SACs for HER process using late first-row transition metals anchored on graphyne support: A DFT insight , 2021, International Journal of Hydrogen Energy.
[7] Qinghua Zhang,et al. Compressive Strain Modulation of Single Iron Sites on Helical Carbon Support Boosts Electrocatalytic Oxygen Reduction. , 2021, Angewandte Chemie.
[8] Panpan Li,et al. Understanding the inter-site distance effect in single-atom catalysts for oxygen electroreduction , 2021, Nature Catalysis.
[9] Shuhong Yu,et al. Clean and Affordable Hydrogen Fuel from Alkaline Water Splitting: Past, Recent Progress, and Future Prospects , 2021, Advanced materials.
[10] Chenze Qi,et al. Designing C3N-supported single atom catalysts for efficient nitrogen reduction based on descriptor of catalytic activity , 2021 .
[11] Qiang Zhang,et al. Recent advances of noble-metal-free bifunctional oxygen reduction and evolution electrocatalysts. , 2021, Chemical Society reviews.
[12] Yuen Wu,et al. Single Atomic Cerium Sites with a High Coordination Number for Efficient Oxygen Reduction in Proton-Exchange Membrane Fuel Cells , 2021 .
[13] Jun Jiang,et al. Electronic Spin Moment As a Catalytic Descriptor for Fe Single-Atom Catalysts Supported on C2N. , 2021, Journal of the American Chemical Society.
[14] Dawei Wu,et al. FeS2-anchored transition metal single atoms for highly efficient overall water splitting: a DFT computational screening study , 2021, Journal of Materials Chemistry A.
[15] Chaochen Xu,et al. Recent Progress of 3d Transition Metal Single‐Atom Catalysts for Electrochemical CO2 Reduction , 2020, Advanced Materials Interfaces.
[16] Lei Wang,et al. Single-Iron Site Catalysts with Self-Assembled Dual-size Architecture and Hierarchical Porosity for Proton-Exchange Membrane Fuel Cells , 2020 .
[17] Yuzheng Guo,et al. Computational Screening Single-Atom Catalysts Supported on g-CN for N2 Reduction: High Activity and Selectivity , 2020 .
[18] Zili Wu,et al. Descriptors for Hydrogen Evolution on Single Atom Catalysts in Nitrogen-Doped Graphene , 2020, The Journal of Physical Chemistry C.
[19] Yi Jia,et al. Understanding the activity of Co-N4-xCx in atomic metal catalysts for oxygen reduction catalysis. , 2020, Angewandte Chemie.
[20] X. Bao,et al. High‐Valence Nickel Single‐Atom Catalysts Coordinated to Oxygen Sites for Extraordinarily Activating Oxygen Evolution Reaction , 2020, Advanced science.
[21] Shunsuke Yagi,et al. ZIF-Derived Co9-xNixS8 Nanoparticles Immobilized on N-Doped Carbon as Efficient Catalyst for High-Performance Zinc-air Batteries. , 2020, ACS applied materials & interfaces.
[22] W. Hu,et al. Interface engineering of NiS2/CoS2 nanohybrids as bifunctional electrocatalysts for rechargeable solid state Zn-air battery , 2019, Journal of Power Sources.
[23] Jin Young Kim,et al. Palladium Single‐Atom Catalysts Supported on C@C 3 N 4 for Electrochemical Reactions , 2019, ChemElectroChem.
[24] Hao Ming Chen,et al. A Cobalt-Iron Double-Atom Catalyst for the Oxygen Evolution Reaction. , 2019, Journal of the American Chemical Society.
[25] Lin-wang Wang,et al. Transition metal-embedded two-dimensional C3N as a highly active electrocatalyst for oxygen evolution and reduction reactions , 2019, Journal of Materials Chemistry A.
[26] L. Wan,et al. Cascade anchoring strategy for general mass production of high-loading single-atomic metal-nitrogen catalysts , 2019, Nature Communications.
[27] E. Ganz,et al. Electrochemical reduction of CO2 by single atom catalyst TM–TCNQ monolayers , 2019, Journal of Materials Chemistry A.
[28] Lin-wang Wang,et al. Transition-metal single atoms in nitrogen-doped graphenes as efficient active centers for water splitting: a theoretical study. , 2019, Physical chemistry chemical physics : PCCP.
[29] K. Amine,et al. Rational Design of Graphene‐Supported Single Atom Catalysts for Hydrogen Evolution Reaction , 2019, Advanced Energy Materials.
[30] D. Cullen,et al. Atomically dispersed manganese catalysts for oxygen reduction in proton-exchange membrane fuel cells , 2018, Nature Catalysis.
[31] E. Ganz,et al. Efficient and Selective Electroreduction of CO2 by Single-Atom Catalyst Two-Dimensional TM–Pc Monolayers , 2018, ACS Sustainable Chemistry & Engineering.
[32] S. Back,et al. Ultralow Overpotential of Hydrogen Evolution Reaction using Fe‐Doped Defective Graphene: A Density Functional Study , 2018, ChemCatChem.
[33] Xin-bo Zhang,et al. Recent Advances toward the Rational Design of Efficient Bifunctional Air Electrodes for Rechargeable Zn-Air Batteries. , 2018, Small.
[34] B. Wood,et al. Graphene Defects Trap Atomic Ni Species for Hydrogen and Oxygen Evolution Reactions , 2018 .
[35] M. Jaroniec,et al. Heteroatom-Doped Graphene-Based Materials for Energy-Relevant Electrocatalytic Processes , 2015 .
[36] Charles C. L. McCrory,et al. Benchmarking hydrogen evolving reaction and oxygen evolving reaction electrocatalysts for solar water splitting devices. , 2015, Journal of the American Chemical Society.
[37] Hua Zhang,et al. Nitrogen and Sulfur Codoped Graphene: Multifunctional Electrode Materials for High‐Performance Li‐Ion Batteries and Oxygen Reduction Reaction , 2014, Advanced materials.
[38] Jan Rossmeisl,et al. Density functional studies of functionalized graphitic materials with late transition metals for Oxygen Reduction Reactions. , 2011, Physical chemistry chemical physics : PCCP.
[39] G. Henkelman,et al. A grid-based Bader analysis algorithm without lattice bias , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[40] J. Nørskov,et al. Electrolysis of water on (oxidized) metal surfaces , 2005 .
[41] X. Bao,et al. N,O Symmetric Double Coordination of Unsaturated Fe Single-Atom Confined within Graphene Framework for Extraordinarily Boosting Oxygen Reduction in Zn-Air Batteries , 2023, Energy & Environmental Science.
[42] Chenze Qi,et al. Metallic C5N Monolayers as Efficient Catalysts for Accelerating Redox Kinetics of Sulfur in Lithium-Sulfur Batteries , 2021, Physical Chemistry Chemical Physics.