Local atomic structure modulations activate metal oxide as electrocatalyst for hydrogen evolution in acidic water
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Summary
The local atomic structure of a classical but inert transition metal oxide, tungsten trioxide, is modulated to be an efficient electrocatalyst for hydrogen evolution in acidic water, which has shown promise as an alternative to platinum.
- Type
- article
- Published
- 2015-08-19
- Cited by
- 329
- References
- 35
- Access
- Open access
- OpenAlex
- https://openalex.org/W1163165735
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:2259507
Keywords
Electrocatalyst, Oxide, Tungsten trioxide, Chemical physics, Catalysis
References
- Hydrogen evolution by a metal-free electrocatalyst
- Highly active and durable non-precious-metal catalysts encapsulated in carbon nanotubes for hydrogen evolution reaction
- Tungsten Oxide as a Gate Dielectric for Highly Transparent and Temperature‐Stable Zinc‐Oxide‐Based Thin‐Film Transistors
- Engineering the surface structure of MoS2 to preferentially expose active edge sites for electrocatalysis.
- Alternative energy technologies
- Hydrogen-treated WO3 nanoflakes show enhanced photostability
- Electrocatalytic pathways towards sustainable fuel production from water and CO2
- Ultrathin platinum nanowires grown on single-layered nickel hydroxide with high hydrogen evolution activity
- Enhancing Hydrogen Evolution Activity in Water Splitting by Tailoring Li+-Ni(OH)2-Pt Interfaces
- Raman scattering study on anatase TiO2 nanocrystals
- Enhanced thermoelectric properties of the n-type Magnéli phase WO2.90: reduced thermal conductivity through microstructure engineering
- One‐Dimensional Metal‐Oxide Nanostructures: Recent Developments in Synthesis, Characterization, and Applications
- Catalytic activity of platinum/tungsten oxide nanorod electrodes towards electro-oxidation of methanol
- Nanostructured nickel phosphide as an electrocatalyst for the hydrogen evolution reaction.
- Ultrathin cobalt-manganese layered double hydroxide is an efficient oxygen evolution catalyst.
- XPS studies on surface reduction of tungsten oxide nanowire film by Ar+ bombardment
- Efficient photoelectrochemical hydrogen production from bismuth vanadate-decorated tungsten trioxide helix nanostructures
- Synthesis of WO3 nanoparticles using a biopolymer as a template for electrocatalytic hydrogen evolution
- Computational high-throughput screening of electrocatalytic materials for hydrogen evolution
- Proton intercalated two-dimensional WO3 nano-flakes with enhanced charge-carrier mobility at room temperature.
Cited by
- Noble-metal-free tungsten oxide/carbon (WOx/C) hybrid manowires for highly efficient hydrogen evolution
- Active Sites Implanted Carbon Cages in Core-Shell Architecture: Highly Active and Durable Electrocatalyst for Hydrogen Evolution Reaction.
- From Water Oxidation to Reduction: Transformation from Ni(x)Co(3-x)O4 Nanowires to NiCo/NiCoO(x) Heterostructures.
- Partially amorphized MnMoO4 for highly efficient energy storage and the hydrogen evolution reaction
- Defect-Rich Metallic Titania (TiO1.23)—An Efficient Hydrogen Evolution Catalyst for Electrochemical Water Splitting
- A highly active and stable hydrogen evolution catalyst based on pyrite-structured cobalt phosphosulfide
- Tuning dissociation using isoelectronically doped graphene and hexagonal boron nitride: Water and other small molecules.
- Efficient Electrochemical Reduction of Nitrobenzene by Defect-Engineered TiO2-x Single Crystals.
- Synergistic WO3·2H2O Nanoplates/WS2 Hybrid Catalysts for High-Efficiency Hydrogen Evolution.
- Activated carbon becomes active for oxygen reduction and hydrogen evolution reactions.
- A Floating Sheet for Efficient Photocatalytic Water Splitting
- Converting CoMoO4 into CoO/MoOx for Overall Water Splitting by Hydrogenation
- Neuron-Inspired Interpenetrative Network Composed of Cobalt-Phosphorus-Derived Nanoparticles Embedded within Porous Carbon Nanotubes for Efficient Hydrogen Production.
- Strong interfacial coupling of MoS2/g-C3N4 van de Waals solids for highly active water reduction
- First-Principle and Experiment Framework for Charge Distribution at the Interface of the Molybdenum Dichalcogenide Hybrid for Enhanced Electrochemical Hydrogen Generation
- Mo Doping Induced More Active Sites in Urchin‐Like W18O49 Nanostructure with Remarkably Enhanced Performance for Hydrogen Evolution Reaction
- In Situ Fabrication of Tungsten Diphosphide Nanoparticles on Tungsten foil: A Hydrogen‐Evolution Cathode for a Wide pH Range
- Modifying oxide nanomaterials’ properties by hydrogenation
- Sub-stoichiometric WO2.9 for formaldehyde sensing and treatment: a first-principles study
- FeNi3/NiFeOx Nanohybrids as Highly Efficient Bifunctional Electrocatalysts for Overall Water Splitting
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