Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 126 checked references that resolve
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resolves10.1039/c2ee22554aOxygen electrocatalysts for water electrolyzers and reversible fuel cells: status and perspective
resolves10.1038/s41570-016-0003Earth-abundant catalysts for electrochemical and photoelectrochemical water splitting
resolves10.1002/cctc.201000126The Mechanism of Water Oxidation: From Electrolysis via Homogeneous to Biological Catalysis
resolves10.1021/cr400572fArtificial Photosynthesis: Molecular Systems for Catalytic Water Oxidation
resolves10.1016/0013-4686(77)85081-0The anodic characteristics of manganese dioxide electrodes prepared by thermal decomposition of manganese nitrate
resolves10.1007/BF00618733The effect of ferric ions on the behaviour of a nickelous hydroxide electrode
resolves10.1149/1.2100463The Catalysis of the Oxygen Evolution Reaction by Iron Impurities in Thin Film Nickel Oxide Electrodes
resolves10.1021/acs.accounts.6b00635Surface and Interface Engineering of Noble-Metal-Free Electrocatalysts for Efficient Energy Conversion Processes
resolves10.1063/1.1742616Kinetics of Activation Controlled Consecutive Electrochemical Reactions: Anodic Evolution of Oxygen
resolves10.1149/2.015303jesKinetics and Mechanistic Aspects of the Oxygen Evolution Reaction at Hydrous Iron Oxide Films in Base
resolves10.1021/cs501312vTafel Kinetics of Electrocatalytic Reactions: From Experiment to First-Principles
resolves10.1063/1.1742029Influence of Electrode Material on Oxygen Overvoltage: A Theoretical Analysis
resolves10.1038/nmat3313Trends in activity for the water electrolyser reactions on 3d M(Ni,Co,Fe,Mn) hydr(oxy)oxide catalysts
resolves10.1021/ja502379cNickel–Iron Oxyhydroxide Oxygen-Evolution Electrocatalysts: The Role of Intentional and Incidental Iron Incorporation
resolves10.1021/acs.jpclett.5b01650Revised Oxygen Evolution Reaction Activity Trends for First-Row Transition-Metal (Oxy)hydroxides in Alkaline Media
resolves10.1021/jacs.6b05196Oxidatively Electrodeposited Thin-Film Transition Metal (Oxy)hydroxides as Oxygen Evolution Catalysts
resolves10.1021/jacs.6b13100Molecule-Level g-C<sub>3</sub>N<sub>4</sub> Coordinated Transition Metals as a New Class of Electrocatalysts for Oxygen Electrode Reactions
resolves10.1126/science.1212858A Perovskite Oxide Optimized for Oxygen Evolution Catalysis from Molecular Orbital Principles
resolves10.1038/ncomms3439Double perovskites as a family of highly active catalysts for oxygen evolution in alkaline solution
resolves10.1039/C4CP00571FBeyond the volcano limitations in electrocatalysis – oxygen evolution reaction
resolves10.1016/j.nanoen.2016.04.011Beyond the top of the volcano? – A unified approach to electrocatalytic oxygen reduction and oxygen evolution
resolves10.1021/jacs.5b00281Cobalt–Iron (Oxy)hydroxide Oxygen Evolution Electrocatalysts: The Role of Structure and Composition on Activity, Stability, and Mechanism
resolves10.1021/acs.chemmater.5b03404Fe (Oxy)hydroxide Oxygen Evolution Reaction Electrocatalysis: Intrinsic Activity and the Roles of Electrical Conductivity, Substrate, and Dissolution
resolves10.1021/ja307507aSolution-Cast Metal Oxide Thin Film Electrocatalysts for Oxygen Evolution
resolves10.1021/ja407115pBenchmarking Heterogeneous Electrocatalysts for the Oxygen Evolution Reaction
resolves10.1021/ja510442pBenchmarking Hydrogen Evolving Reaction and Oxygen Evolving Reaction Electrocatalysts for Solar Water Splitting Devices
resolves10.1039/C5TA07586FBenchmarking nanoparticulate metal oxide electrocatalysts for the alkaline water oxidation reaction
resolves10.1002/aenm.201600621NiFe‐Based (Oxy)hydroxide Catalysts for Oxygen Evolution Reaction in Non‐Acidic Electrolytes
resolves10.1016/j.electacta.2009.11.106Recent advances in platinum monolayer electrocatalysts for oxygen reduction reaction: Scale-up synthesis, structure and activity of Pt shells on Pd cores
resolves10.1021/ja511559dIdentification of Highly Active Fe Sites in (Ni,Fe)OOH for Electrocatalytic Water Splitting
resolves10.1021/jacs.6b00332Oxygen Evolution Reaction Dynamics, Faradaic Charge Efficiency, and the Active Metal Redox States of Ni–Fe Oxide Water Splitting Electrocatalysts
resolves10.1073/pnas.1620787114Influence of iron doping on tetravalent nickel content in catalytic oxygen evolving films
resolves10.1021/jacs.5b10525In Operando Identification of Geometrical-Site-Dependent Water Oxidation Activity of Spinel Co<sub>3</sub>O<sub>4</sub>
resolves10.1021/j100303a024In-situ Moessbauer study of redox processes in a composite hydroxide of iron and nickel
resolves10.1021/jacs.5b10699Operando Analysis of NiFe and Fe Oxyhydroxide Electrocatalysts for Water Oxidation: Detection of Fe<sup>4+</sup> by Mössbauer Spectroscopy
resolves10.1021/ja200559jEnhanced Activity of Gold-Supported Cobalt Oxide for the Electrochemical Evolution of Oxygen
resolves10.1021/acs.analchem.7b01060<i>In Situ</i>Characterization of Ni and Ni/Fe Thin Film Electrodes for Oxygen Evolution in Alkaline Media by a Raman-Coupled Scanning Electrochemical Microscope Setup
resolves10.1149/1.2095818Characterization of Redox States of Nickel Hydroxide Film Electrodes by In Situ Surface Raman Spectroscopy
resolves10.1021/jacs.5b06814In Situ Observation of Active Oxygen Species in Fe-Containing Ni-Based Oxygen Evolution Catalysts: The Effect of pH on Electrochemical Activity
resolves10.1021/acscatal.6b03126An Operando Investigation of (Ni–Fe–Co–Ce)O<sub><i>x</i></sub> System as Highly Efficient Electrocatalyst for Oxygen Evolution Reaction
resolves10.1021/acs.nanolett.7b03313Morphology Dynamics of Single-Layered Ni(OH)<sub>2</sub>/NiOOH Nanosheets and Subsequent Fe Incorporation Studied by <i>in Situ</i> Electrochemical Atomic Force Microscopy
resolves10.1021/jacs.5b10977Surface Interrogation Scanning Electrochemical Microscopy of Ni<sub>1–<i>x</i></sub>Fe<sub><i>x</i></sub>OOH (0 < <i>x</i> < 0.27) Oxygen Evolving Catalyst: Kinetics of the “fast” Iron Sites
resolves10.1039/C4FD00120FEnhanced oxygen evolution activity by NiO
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resolves10.1021/acscatal.5b02924Effects of Intentionally Incorporated Metal Cations on the Oxygen Evolution Electrocatalytic Activity of Nickel (Oxy)hydroxide in Alkaline Media
resolves10.1021/jacs.7b07117Reactive Fe-Sites in Ni/Fe (Oxy)hydroxide Are Responsible for Exceptional Oxygen Electrocatalysis Activity
resolves10.1021/jacs.6b12250Tracking Catalyst Redox States and Reaction Dynamics in Ni–Fe Oxyhydroxide Oxygen Evolution Reaction Electrocatalysts: The Role of Catalyst Support and Electrolyte pH
resolves10.1073/pnas.1702081114Characterization of NiFe oxyhydroxide electrocatalysts by integrated electronic structure calculations and spectroelectrochemistry
resolves10.1039/C5SC04486CThe importance of nickel oxyhydroxide deprotonation on its activity towards electrochemical water oxidation
resolves10.1038/ncomms5477Exfoliation of layered double hydroxides for enhanced oxygen evolution catalysis
resolves10.1021/am5014369A Comparative Study of Composition and Morphology Effect of Ni<sub><i>x</i></sub>Co<sub>1–<i>x</i></sub>(OH)<sub>2</sub> on Oxygen Evolution/Reduction Reaction
resolves10.1021/nl504872sHydrothermal Continuous Flow Synthesis and Exfoliation of NiCo Layered Double Hydroxide Nanosheets for Enhanced Oxygen Evolution Catalysis
resolves10.1002/aenm.201702965Liquid Exfoliated Co(OH)<sub>2</sub> Nanosheets as Low‐Cost, Yet High‐Performance, Catalysts for the Oxygen Evolution Reaction
resolves10.1002/aenm.201703585Sub‐3 nm Ultrafine Monolayer Layered Double Hydroxide Nanosheets for Electrochemical Water Oxidation
resolves10.1002/adma.201701546Water‐Plasma‐Enabled Exfoliation of Ultrathin Layered Double Hydroxide Nanosheets with Multivacancies for Water Oxidation
resolves10.1002/anie.201701477Layered Double Hydroxide Nanosheets with Multiple Vacancies Obtained by Dry Exfoliation as Highly Efficient Oxygen Evolution Electrocatalysts
resolves10.1021/ja5096733Ultrathin Cobalt–Manganese Layered Double Hydroxide Is an Efficient Oxygen Evolution Catalyst
resolves10.1038/ncomms11981Nickel–vanadium monolayer double hydroxide for efficient electrochemical water oxidation
resolves10.1039/C4SC00565AAtomically-thin non-layered cobalt oxide porous sheets for highly efficient oxygen-evolving electrocatalysts
resolves10.1002/anie.201502226Ultrathin Spinel‐Structured Nanosheets Rich in Oxygen Deficiencies for Enhanced Electrocatalytic Water Oxidation
resolves10.1021/jacs.6b01606Ultrafine NiO Nanosheets Stabilized by TiO<sub>2</sub> from Monolayer NiTi-LDH Precursors: An Active Water Oxidation Electrocatalyst
resolves10.1002/aenm.201700005Defect‐Engineered Ultrathin δ‐MnO<sub>2</sub> Nanosheet Arrays as Bifunctional Electrodes for Efficient Overall Water Splitting
resolves10.1021/acs.chemmater.5b02177Porous Two-Dimensional Nanosheets Converted from Layered Double Hydroxides and Their Applications in Electrocatalytic Water Splitting
resolves10.1002/adma.201604765Intralayered Ostwald Ripening to Ultrathin Nanomesh Catalyst with Robust Oxygen‐Evolving Performance
resolves10.1021/nl202689mScrew Dislocation-Driven Growth of Two-Dimensional Nanoplates
resolves10.1002/advs.201500199Porous Nickel–Iron Oxide as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction
resolves10.1039/C5EE03453AA nanoporous oxygen evolution catalyst synthesized by selective electrochemical etching of perovskite hydroxide CoSn(OH)
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resolves10.1021/ja5082553Metal–Organic Framework Derived Hybrid Co<sub>3</sub>O<sub>4</sub>-Carbon Porous Nanowire Arrays as Reversible Oxygen Evolution Electrodes
resolves10.1016/j.jpowsour.2014.12.085Nickel–cobalt layered double hydroxide nanosheets as high-performance electrocatalyst for oxygen evolution reaction
resolves10.1016/j.jpowsour.2016.10.096The urchin-like sphere arrays Co3O4 as a bifunctional catalyst for hydrogen evolution reaction and oxygen evolution reaction
resolves10.1002/adma.201604437Bimetal‐Organic Framework Derived CoFe<sub>2</sub>O<sub>4</sub>/C Porous Hybrid Nanorod Arrays as High‐Performance Electrocatalysts for Oxygen Evolution Reaction
resolves10.1002/anie.201511447FeOOH/Co/FeOOH Hybrid Nanotube Arrays as High‐Performance Electrocatalysts for the Oxygen Evolution Reaction
resolves10.1002/adma.201600054Design and Synthesis of FeOOH/CeO<sub>2</sub> Heterolayered Nanotube Electrocatalysts for the Oxygen Evolution Reaction
resolves10.1021/ja4027715An Advanced Ni–Fe Layered Double Hydroxide Electrocatalyst for Water Oxidation
resolves10.1002/anie.201306166Three‐Dimensional N‐Doped Graphene Hydrogel/NiCo Double Hydroxide Electrocatalysts for Highly Efficient Oxygen Evolution
resolves10.1002/aenm.201600516Promoting the Water Oxidation Catalysis by Synergistic Interactions between Ni(OH)<sub>2</sub> and Carbon Nanotubes
resolves10.1039/C6EE02375DA Gibeon meteorite yields a high-performance water oxidation electrocatalyst
resolves10.1149/1.1837637A Study of the Electrochemical Redox Behavior of Electrochemically Precipitated Nickel Hydroxides Using Electrochemical Quartz Crystal Microbalance
resolves10.1002/celc.201402262Benchmarking the Stability of Oxygen Evolution Reaction Catalysts: The Importance of Monitoring Mass Losses
resolves10.1016/j.cattod.2015.08.014Oxygen and hydrogen evolution reactions on Ru, RuO 2 , Ir, and IrO 2 thin film electrodes in acidic and alkaline electrolytes: A comparative study on activity and stability
resolves10.1021/acscatal.7b00632Standardized Benchmarking of Water Splitting Catalysts in a Combined Electrochemical Flow Cell/Inductively Coupled Plasma–Optical Emission Spectrometry (ICP-OES) Setup
resolves10.1002/cssc.201701523Catalyst Stability Benchmarking for the Oxygen Evolution Reaction: The Importance of Backing Electrode Material and Dissolution in Accelerated Aging Studies
resolves10.1126/science.1251428Amorphous TiO
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resolves10.1039/C2CS35260EProgress in bismuth vanadate photoanodes for use in solar water oxidation
resolves10.1021/jz4022415Enhanced Stability and Activity for Water Oxidation in Alkaline Media with Bismuth Vanadate Photoelectrodes Modified with a Cobalt Oxide Catalytic Layer Produced by Atomic Layer Deposition
resolves10.1039/C6EE01845AHematite heterostructures for photoelectrochemical water splitting: rational materials design and charge carrier dynamics
resolves10.1021/nn305639zAtomic Layer Deposition of a Submonolayer Catalyst for the Enhanced Photoelectrochemical Performance of Water Oxidation with Hematite
resolves10.1126/science.1233638Photochemical Route for Accessing Amorphous Metal Oxide Materials for Water Oxidation Catalysis
resolves10.1021/jz4002604An Optocatalytic Model for Semiconductor–Catalyst Water-Splitting Photoelectrodes Based on In Situ Optical Measurements on Operational Catalysts
resolves10.1021/cm4021518Will Solar-Driven Water-Splitting Devices See the Light of Day?
resolves10.1021/jacs.5b05544An Optically Transparent Iron Nickel Oxide Catalyst for Solar Water Splitting
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