Ni-based heterostructure with protective phosphide layer to enhance the oxygen evolution reaction for the seawater electrolysis
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Xinfa Chen | Peilin Deng | Jing Li | Xinlong Tian | P. Rao | Yutong Xiao | Yanhui Yu | Huan Wen | Ximei Shi
[1] G. Fu,et al. Reinforcing CoO Covalency via Ce(4f)─O(2p)─Co(3d) Gradient Orbital Coupling for High‐Efficiency Oxygen Evolution , 2023, Advanced materials.
[2] Haozhi Wang,et al. Amorphous Mo-doped NiS0.5Se0.5 Nanosheets@Crystalline NiS0.5Se0.5 Nanorods for High Current-density Electrocatalytic Water Splitting in Neutral Media. , 2022, Angewandte Chemie.
[3] Lifang Jiao,et al. Progress in Hydrogen Production Coupled with Electrochemical Oxidation of Small Molecules. , 2022, Angewandte Chemie.
[4] Junming Luo,et al. Movable type printing method to synthesize high-entropy single-atom catalysts , 2022, Nature Communications.
[5] Wan-Zhen Zhang,et al. Highly active bifunctional electrocatalyst: Nanoporous (Ni,Co)0.85Se anchored on rGO for water and hydrazine oxidation , 2022, International Journal of Energy Research.
[6] N. Zhang,et al. Surface Activation and Ni-S Stabilization in NiO/NiS2 for Efficient Oxygen Evolution Reaction. , 2022, Angewandte Chemie.
[7] A. Soon,et al. Activated chemical bonds in nanoporous and amorphous iridium oxides favor low overpotential for oxygen evolution reaction , 2022, Nature Communications.
[8] Yongsheng Wei,et al. Sepaktakraw-like catalyst Mn-doped CoP enabling ultrastable electrocatalytic oxygen evolution at 100 mA·cm−2 in alkali media , 2022, Rare Metals.
[9] Xiaodong Lei,et al. Activated MoS2 by Constructing Single Atomic Cation Vacancies for Accelerated Hydrogen Evolution Reaction. , 2022, ACS applied materials & interfaces.
[10] X. Qu,et al. Facile synthesis of transition metal carbide nanoparticles embedded in mesoporous carbon nanosheets for hydrogen evolution reaction , 2022, Rare Metals.
[11] J. Luo,et al. Mo-decorated cobalt phosphide nanoarrays as bifunctional electrocatalysts for efficient overall water/seawater splitting , 2022, Materials Today Nano.
[12] N. Kim,et al. Atomic Heterointerface Engineering of Ni2P‐NiSe2 Nanosheets Coupled ZnP‐Based Arrays for High‐Efficiency Solar‐Assisted Water Splitting , 2022, Advanced Functional Materials.
[13] Licheng Sun,et al. Triggering Lattice Oxygen Activation of Single‐Atomic Mo Sites Anchored on Ni–Fe Oxyhydroxides Nanoarrays for Electrochemical Water Oxidation , 2022, Advanced materials.
[14] M. Haruta,et al. Defective NiO as a Stabilizer for Au Single-Atom Catalysts , 2022, ACS Catalysis.
[15] Junming Luo,et al. A plasma bombing strategy to synthesize high-loading single-atom catalysts for oxygen reduction reaction , 2022, Cell Reports Physical Science.
[16] Zhi Xu,et al. Structural Buffer Engineering on Metal Oxide for Long‐Term Stable Seawater Splitting , 2022, Advanced Functional Materials.
[17] Min Gyu Kim,et al. The synergistic effect of Hf-O-Ru bonds and oxygen vacancies in Ru/HfO2 for enhanced hydrogen evolution , 2022, Nature Communications.
[18] Junming Luo,et al. Isolated Co Atoms Anchored on Defective Nitrogen‐doped Carbon Graphene as Efficient Oxygen Reduction Reaction Electrocatalysts , 2022, ENERGY & ENVIRONMENTAL MATERIALS.
[19] D. Zhao,et al. Self-Assembly of Ir-Based Nanosheets with Ordered Interlayer Space for Enhanced Electrocatalytic Water Oxidation. , 2022, Journal of the American Chemical Society.
[20] Shibin Yin,et al. Three-Phase Heterojunction NiMo-Based Nano-Needle for Water Splitting at Industrial Alkaline Condition , 2021, Nano-Micro Letters.
[21] Li-Wen Ding,et al. Metal organic framework derived transition metal phosphides for electrocatalytic water splitting , 2021, Journal of Energy Chemistry.
[22] X. Tao,et al. Construction of Ni(CN)2/NiSe2 Heterostructures by Stepwise Topochemical Pathways for Efficient Electrocatalytic Oxygen Evolution , 2021, Advanced materials.
[23] Chenghua Sun,et al. A Ta-TaS2 monolith catalyst with robust and metallic interface for superior hydrogen evolution , 2021, Nature Communications.
[24] S. Liao,et al. Advanced Atomically Dispersed Metal–Nitrogen–Carbon Catalysts Toward Cathodic Oxygen Reduction in PEM Fuel Cells , 2021 .
[25] X. Lou. Phosphorized CoNi2S4 Yolk-Shell Spheres for Highly Efficient Hydrogen Production via Water and Urea Electrolysis. , 2021, Angewandte Chemie.
[26] G. Qian,et al. Strategies for the enhanced water splitting activity over metal–organic frameworks-based electrocatalysts and photocatalysts , 2021 .
[27] Zhiqun Lin,et al. Recent advances in activating surface reconstruction for the high-efficiency oxygen evolution reaction. , 2021, Chemical Society reviews.
[28] Zhiyu Wang,et al. Energy-saving hydrogen production by chlorine-free hybrid seawater splitting coupling hydrazine degradation , 2021, Nature Communications.
[29] D. Zheng,et al. Structural advantages and enhancement strategies of heterostructure water-splitting electrocatalysts , 2021, Cell Reports Physical Science.
[30] Xiaoxin Zou,et al. Design of a Multilayered Oxygen‐Evolution Electrode with High Catalytic Activity and Corrosion Resistance for Saline Water Splitting , 2021, Advanced Functional Materials.
[31] Qi Shao,et al. Recent Progress in Advanced Electrocatalyst Design for Acidic Oxygen Evolution Reaction , 2021, Advanced materials.
[32] Tengfei Jiang,et al. Ion-exchange controlled surface engineering of cobalt phosphide nanowires for enhanced hydrogen evolution , 2020 .
[33] H. Fu,et al. N-Doped carbon coating enhances the bifunctional oxygen reaction activity of CoFe nanoparticles for a highly stable Zn–air battery , 2020 .
[34] Z. Ren,et al. Ultrafast room-temperature synthesis of porous S-doped Ni/Fe (oxy)hydroxide electrodes for oxygen evolution catalysis in seawater splitting , 2020, Energy & Environmental Science.
[35] Z. Ren,et al. Heterogeneous Bimetallic Phosphide Ni2P‐Fe2P as an Efficient Bifunctional Catalyst for Water/Seawater Splitting , 2020, Advanced Functional Materials.
[36] K. Zaghib,et al. Lattice‐Strain Engineering of Homogeneous NiS0.5Se0.5 Core–Shell Nanostructure as a Highly Efficient and Robust Electrocatalyst for Overall Water Splitting , 2020, Advanced materials.
[37] A. W. Maijenburg,et al. Bifunctional Heterostructured Transition Metal Phosphides for Efficient Electrochemical Water Splitting , 2020, Advanced Functional Materials.
[38] H. Xin,et al. Stable and efficient single-atom Zn catalyst for CO2 reduction to CH4. , 2020, Journal of the American Chemical Society.
[39] Hongxia Wang,et al. Recent advancements in heterostructured interface engineering for hydrogen evolution reaction electrocatalysis , 2020 .
[40] Yifan Chen,et al. CoS2@N-doped carbon core–shell nanorod array grown on Ni foam for enhanced electrocatalytic water oxidation , 2020 .
[41] X. Lou,et al. Advanced Electrocatalysts for the Oxygen Reduction Reaction in Energy Conversion Technologies , 2020, Joule.
[42] X. Lou,et al. Engineering bunched Pt-Ni alloy nanocages for efficient oxygen reduction in practical fuel cells , 2019, Science.
[43] Z. Ren,et al. Non-noble metal-nitride based electrocatalysts for high-performance alkaline seawater electrolysis , 2019, Nature Communications.
[44] N. Ali,et al. Utilizing the Space-charge Region of FeNi-LDH/CoP p-n Junction to Promote the Performance in Oxygen Evolution Electrocatalysis. , 2019, Angewandte Chemie.
[45] Xiaoming Sun,et al. Recent progress on earth abundant electrocatalysts for hydrogen evolution reaction (HER) in alkaline medium to achieve efficient water splitting – A review , 2019, Journal of Energy Chemistry.
[46] Chaoyi Yan,et al. Modulating Electronic Structures of Inorganic Nanomaterials for Efficient Electrocatalytic Water Splitting. , 2019, Angewandte Chemie.
[47] Jooho Moon,et al. Homologous CoP/NiCoP Heterostructure on N‐Doped Carbon for Highly Efficient and pH‐Universal Hydrogen Evolution Electrocatalysis , 2018, Advanced Functional Materials.
[48] Zhichuan J. Xu,et al. Heterostructured Electrocatalysts for Hydrogen Evolution Reaction Under Alkaline Conditions , 2018, Nano-Micro Letters.
[49] B. Liu,et al. An Earth‐Abundant Catalyst‐Based Seawater Photoelectrolysis System with 17.9% Solar‐to‐Hydrogen Efficiency , 2018, Advanced materials.
[50] Dehui Deng,et al. Enhanced electron penetration through an ultrathin graphene layer for highly efficient catalysis of the hydrogen evolution reaction. , 2015, Angewandte Chemie.
[51] Michael F Toney,et al. Lattice-strain control of the activity in dealloyed core-shell fuel cell catalysts. , 2010, Nature chemistry.
[52] H. Wu,et al. Tungstate-modulated Ni/Ni(OH)2 interface for efficient hydrogen evolution reaction in neutral media , 2021 .