Works about NICKEL phosphide
Results: 273
Nickel Carbide Nanoparticle Catalyst for Selective Hydrogenation of Nitriles to Primary Amines.
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- Chemistry - A European Journal, 2024, v. 30, n. 13, p. 1, doi. 10.1002/chem.202303573
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Three‐Dimensional Nickel Cobalt Phosphide Nanocrosses with Well‐Defined Axial Arms for Efficient Oxygen Evolution Reaction.
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- Chemistry - A European Journal, 2023, v. 29, n. 32, p. 1, doi. 10.1002/chem.202300398
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Expedited Synthesis of Metal Phosphides Maximizes Dispersion, Air Stability, and Catalytic Performance in Selective Hydrogenation.
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- Angewandte Chemie, 2024, v. 136, n. 33, p. 1, doi. 10.1002/ange.202404292
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Modulating the Electrolyte Microenvironment in Electrical Double Layer for Boosting Electrocatalytic Nitrate Reduction to Ammonia.
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- Angewandte Chemie, 2024, v. 136, n. 32, p. 1, doi. 10.1002/ange.202408382
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Bridging Nickel‐MOF and Copper Single Atoms/Clusters with H‐Substituted Graphdiyne for the Tandem Catalysis of Nitrate to Ammonia.
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- Angewandte Chemie, 2024, v. 136, n. 30, p. 1, doi. 10.1002/ange.202404819
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Modulating Electronic Metal‐Support Interactions to Boost Visible‐Light‐Driven Hydrolysis of Ammonia Borane: Nickel‐Platinum Nanoparticles Supported on Phosphorus‐Doped Titania.
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- Angewandte Chemie, 2023, v. 135, n. 40, p. 1, doi. 10.1002/ange.202305371
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A complexant-assisted hydrothermal route for the synthesis of nickel phosphide.
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- Journal of Materials Science, 2014, v. 49, n. 21, p. 7556, doi. 10.1007/s10853-014-8464-0
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High catalytic performance of Fe-rich palygorskite clay-supported Ni catalysts for steam reforming of toluene.
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- Clay Minerals, 2023, v. 58, n. 1, p. 67, doi. 10.1180/clm.2023.12
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Facile Synthesis of Nickel Phosphide @ N-Doped Carbon Nanorods with Exceptional Cycling Stability as Li-Ion and Na-Ion Battery Anode Material.
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- Batteries, 2023, v. 9, n. 5, p. 267, doi. 10.3390/batteries9050267
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Synthesis of Ni/Al<sub>2</sub>O<sub>3</sub> catalysts via alkaline polyol method and hydrazine reduction method for the partial oxidation of methane.
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- Turkish Journal of Chemistry, 2021, v. 45, n. 4, p. 967, doi. 10.3906/kim-2012-46
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Engineering Electronic Structures of Nickel Cobalt Phosphide via Iron Doping for Efficient Overall Water Splitting.
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- ChemElectroChem, 2020, v. 7, n. 24, p. 4913, doi. 10.1002/celc.202001390
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Molybdenum Sulfide Nanosheets Coupled with Ni<sub>2</sub>P Hollow Microspheres as an Efficient Electrocatalyst for Hydrogen Generation over a Wide pH Range Mediated by a 3D/2D Interface.
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- ChemElectroChem, 2020, v. 7, n. 1, p. 355, doi. 10.1002/celc.201901848
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Metal‐Organic Framework Derived Ni<sub>2</sub>P/C Hollow Microspheres as Battery‐Type Electrodes for Battery‐Supercapacitor Hybrids.
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- ChemElectroChem, 2019, v. 6, n. 21, p. 5511, doi. 10.1002/celc.201901504
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Three‐Dimensional Graphene‐Foam‐Supported Hierarchical Nickel Iron Phosphide Nanosheet Arrays as Efficient and Stable Bifunctional Electrocatalysts for Overall Water Splitting.
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- ChemElectroChem, 2019, v. 6, n. 21, p. 5407, doi. 10.1002/celc.201901420
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Ni<sub>12</sub>P<sub>5</sub> Nanoparticles Hinged by Carbon Nanotubes as 3D Mesoporous Anodes for Lithium‐Ion Batteries.
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- ChemElectroChem, 2018, v. 5, n. 11, p. 1467, doi. 10.1002/celc.201800223
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In Situ Construction of Nickel Phosphosulfide (Ni<sub>5</sub>P<sub>4</sub>|S) Active Species on 3D Ni Foam through Chemical Vapor Deposition for Electrochemical Hydrogen Evolution.
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- ChemElectroChem, 2017, v. 4, n. 5, p. 1108, doi. 10.1002/celc.201600808
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Enhanced hydrogen evolution reaction activity through samarium-doped nickel phosphide (Ni<sub>2</sub>P) electrocatalyst.
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- Scientific Reports, 2024, v. 14, n. 1, p. 1, doi. 10.1038/s41598-024-66775-7
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The Promotor and Poison Effects of the Inorganic Elements of Kraft Lignin during Hydrotreatment over NiMoS Catalyst.
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- Catalysts (2073-4344), 2021, v. 11, n. 8, p. 874, doi. 10.3390/catal11080874
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Nickel Phosphide Catalysts as Efficient Systems for CO 2 Upgrading via Dry Reforming of Methane.
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- Catalysts (2073-4344), 2021, v. 11, n. 4, p. 446, doi. 10.3390/catal11040446
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Modelling the Sintering of Nickel Particles Supported on γ-Alumina under Hydrothermal Conditions.
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- Catalysts (2073-4344), 2020, v. 10, n. 12, p. 1477, doi. 10.3390/catal10121477
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Turnover Rate of Metal-Catalyzed Hydroconversion of 2,5-Dimethylfuran: Gas-Phase Versus Liquid-Phase.
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- Catalysts (2073-4344), 2020, v. 10, n. 10, p. 1171, doi. 10.3390/catal10101171
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Higher Activity of Ni/γ-Al2O3 over Fe/γ-Al2O3 and Ru/γ-Al2O3 for Catalytic Ammonia Synthesis in Nonthermal Atmospheric-Pressure Plasma of N2 and H2.
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- Catalysts (2073-4344), 2020, v. 10, n. 5, p. 590, doi. 10.3390/catal10050590
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Nickel Phosphide Electrocatalysts for Hydrogen Evolution Reaction.
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- Catalysts (2073-4344), 2020, v. 10, n. 2, p. 188, doi. 10.3390/catal10020188
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Ball Milling-Assisted Synthesis of Ultrasmall Ruthenium Phosphide for Efficient Hydrogen Evolution Reaction.
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- Catalysts (2073-4344), 2019, v. 9, n. 3, p. 240, doi. 10.3390/catal9030240
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Support Effect on the Performance of Ni2P Catalysts in the Hydrodeoxygenation of Methyl Palmitate.
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- Catalysts (2073-4344), 2018, v. 8, n. 11, p. 515, doi. 10.3390/catal8110515
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The Deoxygenation Pathways of Palmitic Acid into Hydrocarbons on Silica-Supported Ni12P5 and Ni2P Catalysts.
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- Catalysts (2073-4344), 2018, v. 8, n. 4, p. 153, doi. 10.3390/catal8040153
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HDO of Methyl Palmitate over Silica-Supported Ni Phosphides: Insight into Ni/P Effect.
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- Catalysts (2073-4344), 2017, v. 7, n. 10, p. 298, doi. 10.3390/catal7100298
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Synthesis and Composition Study of Electrochemically Deposited Ni-P Coating with Increased Surface Area.
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- Coatings (2079-6412), 2021, v. 11, n. 9, p. 1071, doi. 10.3390/coatings11091071
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Synergistic Effect of Composite Nickel Phosphide Nanoparticles and Carbon Fiber on the Enhancement of Salivary Enzyme-Free Glucose Sensing.
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- Biosensors (2079-6374), 2023, v. 13, n. 1, p. 49, doi. 10.3390/bios13010049
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Noncrystalline structure of Ni-P nanoparticles prepared by liquid pulse discharge.
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- Journal of Synchrotron Radiation, 2015, v. 22, n. 2, p. 376, doi. 10.1107/S1600577514025703
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Improved Nitrate‐to‐Ammonia Electrocatalysis through Hydrogen Poisoning Effects.
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- Angewandte Chemie, 2024, v. 136, n. 44, p. 1, doi. 10.1002/ange.202411068
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Ozone-initiated degradation of 1,2-dichlorobenzene over ceria-supported manganese, nickel, vanadium and iron catalysts.
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- Pure & Applied Chemistry, 2024, v. 96, n. 5, p. 625, doi. 10.1515/pac-2023-1019
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A facile preparation of graphene hydrogel-supported bimetallic RuM (M: Co, Ni, Cu) nanoparticles as catalysts in the hydrogen generation from ammonia borane.
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- Pure & Applied Chemistry, 2023, v. 95, n. 6, p. 655, doi. 10.1515/pac-2022-1204
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Effect of ethylene glycol as solvent on the composition and morphology of nickel phosphide.
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- Micro & Nano Letters (Wiley-Blackwell), 2018, v. 13, n. 12, p. 1646, doi. 10.1049/mnl.2018.5174
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Theoretical study on the phase stability, elasticity, hardness and electronic structures of Ni–P compounds.
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- Phase Transitions, 2016, v. 89, n. 11, p. 1078, doi. 10.1080/01411594.2016.1146952
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- Article
Electrons and Hydroxyl Radicals Synergistically Boost the Catalytic Hydrogen Evolution from Ammonia Borane over Single Nickel Phosphides under Visible Light Irradiation.
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- ChemistryOpen, 2020, v. 9, n. 3, p. 366, doi. 10.1002/open.201900335
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Preparation of Nickel Nanocatalysts and Application to the Hydrodechlorination of 3-Chlorophenol under Liquid Phase.
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- Journal of Chemistry, 2021, p. 1, doi. 10.1155/2021/8580754
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Uniform Loading of Nickel Phosphide Nanoparticles in Hierarchical Carbonized Wood Channel for Efficient Electrocatalytic Hydrogen Evolution.
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- Journal of Chemistry, 2020, p. 1, doi. 10.1155/2020/7180347
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- Article
RESULTS OF THE STUDY OF FILMS OBTAINED BY ADDING VARIOUS IMPURITIES TO THE SOLUTION OF NICKEL PHOSPHIDE.
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- Rasayan Journal of Chemistry, 2020, v. 13, n. 1, p. 346, doi. 10.31788/RJC.2020.1315539
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Ni<sub>2</sub>P Nanosheets: A High Catalytic Activity Platform for Electrochemical Detection of Acetaminophen.
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- Chinese Journal of Chemistry, 2021, v. 39, n. 7, p. 1849, doi. 10.1002/cjoc.202100043
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Kinetic Study of Zirconia-Alumina-Supported Ni-Fe Catalyst for Dry Reforming of Methane: Impact of Partial Pressure and Reaction Temperature.
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- International Journal of Chemical Engineering (1687806X), 2023, p. 1, doi. 10.1155/2023/8667432
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One-pot synthesis of molybdenum trioxide nanobelts for high performance catalytic oxidative desulfurization of dibenzothiophene.
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- Journal of the Iranian Chemical Society, 2023, v. 20, n. 7, p. 1621, doi. 10.1007/s13738-023-02782-1
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Formation of branched polyethylenes by ethylene homopolymerization using LNiBr<sub>2</sub> homo‐ and heterogeneous precatalysts: Interpretation of the polymer structures in comparison with commercial LLDPE.
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- Journal of Applied Polymer Science, 2021, v. 138, n. 20, p. 1, doi. 10.1002/app.50436
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OCCASIONAL PUBLICATIONS: FROM STANDARDS, PATENTS, NEWSLETTERS, GOVERNEMNT DOCUMENTS AND NOTIFICATIONS, ANNUAL REPORTS, AND SO ON.
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- TERI Information Digest on Energy & Environment (TIDEE), 2019, v. 18, n. 3, p. 349
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- Article
Cosmogenic Substances in the Zhamanshin Crater.
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- Doklady Earth Sciences, 2018, v. 478, n. 2, p. 204, doi. 10.1134/S1028334X18020034
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Physical and electrochemical properties of ammonium nickel phosphate by hydrothermal synthesis: phase transition from nickel phosphide to ammonium nickel phosphate.
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- Optical & Quantum Electronics, 2024, v. 56, n. 1, p. 1, doi. 10.1007/s11082-023-05776-8
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Phase-control synthesis and catalytic property of nickel phosphide nanospheres.
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- Journal of Nanoparticle Research, 2020, v. 22, n. 8, p. N.PAG, doi. 10.1007/s11051-020-04962-z
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Synthesis, characterization, and photocatalytic properties of NiP hollow microspheres.
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- Journal of Nanoparticle Research, 2017, v. 19, n. 5, p. 1, doi. 10.1007/s11051-017-3851-5
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Hydrothermal synthesis of NiP nanoparticle and its hydrodesulfurization of dibenzothiophene.
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- Journal of Nanoparticle Research, 2017, v. 19, n. 4, p. 1, doi. 10.1007/s11051-017-3781-2
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Molecular modeling study on the water-electrode surface interaction in hydrovoltaic energy.
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- Scientific Reports, 2023, v. 13, n. 1, p. 1, doi. 10.1038/s41598-023-39888-8
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