Dual-phase MoC-Mo2C nanosheets prepared by molten salt electrochemical conversion of CO2 as excellent electrocatalysts for the hydrogen evolution reaction
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P. Chu | S. Jiao | B. Gao | Mingyong Wang | Yunfei Chen | Xiang Xiao | Aijing Lv
[1] Hong Zhang,et al. Atomic Sulfur Filling Oxygen Vacancies Optimizes H Absorption, Boosts Hydrogen Evolution Reaction in Alkaline Media. , 2021, Angewandte Chemie.
[2] Lifeng Liu,et al. Amorphous phosphatized ruthenium-iron bimetallic nanoclusters with Pt-like activity for hydrogen evolution reaction , 2021 .
[3] Weiwei Cai,et al. Pt/Mo2C heteronanosheets for superior hydrogen evolution reaction , 2020 .
[4] A. Mondal,et al. Large scale synthesis of Mo2C nanoparticle incorporated carbon nanosheet (Mo2C–C) for enhanced hydrogen evolution reaction , 2020 .
[5] Yitai Qian,et al. Regulating the Interfacial Electronic Coupling of Fe2N via Orbital Steering for Hydrogen Evolution Catalysis , 2020, Advanced materials.
[6] D. Fang,et al. Modified separators for rechargeable high-capacity selenium-aluminium batteries , 2020 .
[7] Wei Weng,et al. Thermoelectrochemical formation of Fe/Fe3C@hollow N-doped carbon in molten salts for enhanced catalysis , 2020 .
[8] W. P. Mounfield,et al. Synthesis of unsupported two-dimensional molybdenum carbide nanosheets for hydrogen evolution , 2020 .
[9] Lei Zhang,et al. A sacrificial Zn strategy enables anchoring of metal single atoms on the exposed surface of holey 2D molybdenum carbide nanosheets for efficient electrocatalysis , 2020 .
[10] S. Jiao,et al. Electrochemical graphitization conversion of CO2 through soluble NaVO3 homogeneous catalyst in carbonate molten salt , 2020 .
[11] 安华,et al. SiC/Pt/CdS纳米棒Z型异质结的制备及其高效光催化产氢性能 , 2020 .
[12] Jifeng Pang,et al. Transition metal carbide catalysts for biomass conversion: A review , 2019, Applied Catalysis B: Environmental.
[13] F. Calle‐Vallejo,et al. Advances and challenges in understanding the electrocatalytic conversion of carbon dioxide to fuels , 2019, Nature Energy.
[14] Haotian Wang,et al. Continuous production of pure liquid fuel solutions via electrocatalytic CO2 reduction using solid-electrolyte devices , 2019, Nature Energy.
[15] Lifang Jiao,et al. Coupled cobalt-doped molybdenum carbide@N-doped carbon nanosheets/nanotubes supported on nickel foam as a binder-free electrode for overall water splitting , 2019, Chinese Journal of Catalysis.
[16] S. Jiao,et al. Sustainable One-Step Conversion of Soluble NaVO3 into CaV2O4 through Molten Salt Electrolysis , 2019, Journal of The Electrochemical Society.
[17] Sai Zhang,et al. Ethylene-glycol ligand environment facilitates highly efficient hydrogen evolution of Pt/CoP through proton concentration and hydrogen spillover , 2019, Energy & Environmental Science.
[18] Y. Lei,et al. Charge Engineering of Mo2C@Defect-Rich N-Doped Carbon Nanosheets for Efficient Electrocatalytic H2 Evolution , 2019, Nano-micro letters.
[19] Yu Jia,et al. Activation of MoS2 Basal Planes for Hydrogen Evolution by Zinc. , 2019, Angewandte Chemie.
[20] Marlies Hankel,et al. Doping Effects on the Performance of Paired Metal Catalysts for the Hydrogen Evolution Reaction , 2019, J. Chem. Inf. Model..
[21] Xionggang Lu,et al. Sustainable Synthesis of Cr7C3, Cr2AlC, and Their Derived Porous Carbons in Molten Salts , 2018, ACS Sustainable Chemistry & Engineering.
[22] Ram B. Gupta,et al. Heterostructure-Promoted Oxygen Electrocatalysis Enables Rechargeable Zinc-Air Battery with Neutral Aqueous Electrolyte. , 2018, Journal of the American Chemical Society.
[23] S. Jiao,et al. Self‐Supporting Porous CoP‐Based Films with Phase‐Separation Structure for Ultrastable Overall Water Electrolysis at Large Current Density , 2018, Advanced Energy Materials.
[24] Akshay A. Murthy,et al. Morphological Engineering of Winged Au@MoS2 Heterostructures for Electrocatalytic Hydrogen Evolution. , 2018, Nano letters.
[25] J. Baek,et al. Construction of Porous Mo3 P/Mo Nanobelts as Catalysts for Efficient Water Splitting. , 2018, Angewandte Chemie.
[26] Bin Yuan,et al. MoC/C nanowires as high-rate and long cyclic life anode for lithium ion batteries , 2018 .
[27] Visualizing hydrogen-induced reshaping and edge activation in MoS2 and Co-promoted MoS2 catalyst clusters , 2018, Nature Communications.
[28] X. Yao,et al. Activity Origins in Nanocarbons for the Electrocatalytic Hydrogen Evolution Reaction. , 2018, Small.
[29] Baocang Liu,et al. Few Layered N, P Dual‐Doped Carbon‐Encapsulated Ultrafine MoP Nanocrystal/MoP Cluster Hybrids on Carbon Cloth: An Ultrahigh Active and Durable 3D Self‐Supported Integrated Electrode for Hydrogen Evolution Reaction in a Wide pH Range , 2018, Advanced Functional Materials.
[30] Si-Jin Kim,et al. Molybdenum carbide embedded in carbon nanofiber as a 3D flexible anode with superior stability and high-rate performance for Li-ion batteries , 2018 .
[31] Dong Wang,et al. Electrochemical preparation of V2O3 from NaVO3 and its reduction mechanism , 2017, Journal of Wuhan University of Technology-Mater. Sci. Ed..
[32] Jianyin Wang,et al. Hierarchically Structured 3D Integrated Electrodes by Galvanic Replacement Reaction for Highly Efficient Water Splitting , 2017 .
[33] Qiang Zhang,et al. Nanocarbon for Oxygen Reduction Electrocatalysis: Dopants, Edges, and Defects , 2017, Advanced materials.
[34] Jia Ding,et al. Exceptional energy and new insight with a sodium–selenium battery based on a carbon nanosheet cathode and a pseudographite anode , 2017 .
[35] A. C. Hegde,et al. Magnetically Induced Electrodeposition of Ni-Mo Alloy for Hydrogen Evolution Reaction , 2017, Electrocatalysis.
[36] J. VandeVondele,et al. Catalyst support effects on hydrogen spillover , 2017, Nature.
[37] Dong Wang,et al. Mechanism Analysis of Carbon Contamination and the Inhibition by an Anode Structure during Soluble K2CrO4 Electrolysis in CaCl2-KCl Molten Salt , 2017 .
[38] Y. Jiao,et al. Activity origin and catalyst design principles for electrocatalytic hydrogen evolution on heteroatom-doped graphene , 2016, Nature Energy.
[39] François-Xavier Coudert,et al. Carbon dioxide transport in molten calcium carbonate occurs through an oxo-Grotthuss mechanism via a pyrocarbonate anion. , 2016, Nature chemistry.
[40] Z. Dai,et al. Coupled molybdenum carbide and reduced graphene oxide electrocatalysts for efficient hydrogen evolution , 2016, Nature Communications.
[41] S. Jiao,et al. Direct Conversion of Greenhouse Gas CO2 into Graphene via Molten Salts Electrolysis. , 2016, ChemSusChem.
[42] R. Ma,et al. Ultrafine Molybdenum Carbide Nanoparticles Composited with Carbon as a Highly Active Hydrogen-Evolution Electrocatalyst. , 2015, Angewandte Chemie.
[43] Yuanhui Sun,et al. Coupling Mo2 C with Nitrogen-Rich Nanocarbon Leads to Efficient Hydrogen-Evolution Electrocatalytic Sites. , 2015, Angewandte Chemie.
[44] S. Jiao,et al. Electrochemical preparation of carbon films with a Mo2C interlayer in LiCl-NaCl-Na2CO3 melts , 2015 .
[45] J. Lercher,et al. Pathways for H2 Activation on (Ni)-MoS2 Catalysts. , 2015, The journal of physical chemistry letters.
[46] Zhaolin Liu,et al. Investigation of molybdenum carbide nano-rod as an efficient and durable electrocatalyst for hydrogen evolution in acidic and alkaline media , 2014 .
[47] Brian M. Leonard,et al. Multiple phases of molybdenum carbide as electrocatalysts for the hydrogen evolution reaction. , 2014, Angewandte Chemie.
[48] A. Peterson,et al. Trends in the Hydrogen Evolution Activity of Metal Carbide Catalysts , 2014 .
[49] Jingguang G. Chen,et al. Effect of surface carbon on the hydrogen evolution reactivity of tungsten carbide (WC) and Pt-modified WC electrocatalysts , 2012 .
[50] C. Scott,et al. Toluene hydrogenation at low temperature using a molybdenum carbide catalyst , 2011 .
[51] Jakob Kibsgaard,et al. Size threshold in the dibenzothiophene adsorption on MoS2 nanoclusters. , 2010, ACS nano.
[52] J. Nørskov,et al. Computational high-throughput screening of electrocatalytic materials for hydrogen evolution , 2006, Nature materials.
[53] Sasha Omanovic,et al. Characterization of Ni, NiMo, NiW and NiFe electroactive coatings as electrocatalysts for hydrogen evolution in an acidic medium , 2005 .