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Dynamic potential–pH diagrams application to electrocatalysts for wateroxidation

https://doi.org/10.1039/c1sc00516b
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37/37 checkable references clean · checked 2026-07-22

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.

14 without a DOI — not checked. A reference deposited without a DOI is never matched by title or guessed at; it stays outside the checked set, and this line discloses that.

The 37 checked references that resolve
resolves10.1021/ja01150a074
Oxidation Potential-Free Energy Diagrams
resolves10.1021/ja962187t
Ionic Partition Diagrams:  A Potential−pH Representation
resolves10.1021/ja101578m
Inner-Sphere Heterogeneous Electrode Reactions. Electrocatalysis and Photocatalysis: The Challenge
resolves10.1016/j.ijhydene.2008.11.022
Investigations on high performance proton exchange membrane water electrolyzer
resolves10.1016/0022-0728(95)03950-L
Electrochemical surface characterization of IrO2 + SnO2 mixed oxide electrocatalysts
resolves10.1016/j.jelechem.2006.02.004
Composite ternary SnO2–IrO2–Ta2O5 oxide electrocatalysts
resolves10.1021/ac8001287
Screening of Oxygen Evolution Electrocatalysts by Scanning Electrochemical Microscopy Using a Shielded Tip Approach
resolves10.1126/science.1162018
In Situ Formation of an Oxygen-Evolving Catalyst in Neutral Water Containing Phosphate and Co <sup>2+</sup>
resolves10.1016/S0022-0728(96)04841-3
Surface characterization of Co3O4 electrodes prepared by the sol-gel method
resolves10.1021/ja807769r
Electrolyte-Dependent Electrosynthesis and Activity of Cobalt-Based Water Oxidation Catalysts
resolves10.1149/1.2086468
Electrochemically Active Surface Area: Voltammetric Charge Correlations for Ruthenium and Iridium Dioxide Electrodes
resolves10.1351/pac198658070955
The absolute electrode potential: an explanatory note (Recommendations 1986)
resolves10.1021/la9702695
Nucleation and Growth of Phosphate on Metal Oxide Thin Films
resolves10.1016/j.jelechem.2010.05.016
On the importance of correcting for the uncompensated Ohmic resistance in model experiments of the Oxygen Reduction Reaction
resolves10.1023/A:1003444110172
Cathodic behaviour of RuO2-doped Ni/Co3O4 electrodes in alkaline solutions: hydrogen evolution
resolves10.1016/S0013-4686(00)00716-7
Oxygen evolution at RuO2(x)+Co3O4(1−x) electrodes from acid solution
resolves10.1016/j.elecom.2007.05.008
Investigation of the oxygen evolution reaction on Ti/IrO2 electrodes using isotope labelling and on-line mass spectrometry
resolves10.1021/ac200286q
Quantitative Studies on Electrode Material Properties by Means of the Cavity Microelectrode
resolves10.1016/0013-4686(90)85068-X
“Inner” and “outer” active surface of RuO2 electrodes
resolves10.1007/s10800-008-9510-x
New electrocatalytic materials based on mixed metal oxides: electrochemical quartz crystal microbalance characterization
resolves10.1021/ja9063298
Electrogenerated IrO<sub><i>x</i></sub> Nanoparticles as Dissolved Redox Catalysts for Water Oxidation
resolves10.1016/0013-4686(84)85004-5
Electrocatalysis in the anodic evolution of oxygen and chlorine
resolves10.1149/1.1390792
Oxidation of Organics by Intermediates of Water Discharge on IrO[sub 2] and Synthetic Diamond Anodes
resolves10.1021/ja1013344
EPR Evidence for Co(IV) Species Produced During Water Oxidation at Neutral pH
resolves10.1149/1.2115548
Anodic Iridium Oxide Films: XPS‐Studies of Oxidation State Changes and
resolves10.1149/1.2056127
Valency and Structure of Iridium in Anodic Iridium Oxide Films
resolves10.1134/S1023193506100053
Recent developments in understanding factors of electrocatalysis
resolves10.1007/s10800-009-9886-2
Effectiveness factor of fast (Fe3+/Fe2+), moderate (Cl2/Cl−) and slow (O2/H2O) redox couples using IrO2-based electrodes of different loading
resolves10.1007/s10008-006-0238-4
Oxygen evolution on aged IrO x /Ti electrodes in alkaline solutions
resolves10.1021/jp200852c
Screening of Electrocatalysts for Photoelectrochemical Water Oxidation on W-Doped BiVO<sub>4</sub> Photocatalysts by Scanning Electrochemical Microscopy
resolves10.1021/ja8050553
Interrogation of Surfaces for the Quantification of Adsorbed Species on Electrodes: Oxygen on Gold and Platinum in Neutral Media
resolves10.1016/j.jelechem.2006.07.024
Oxidation of hydrogen on oxidized platinum
resolves10.1016/j.elecom.2007.01.044
Novel electrocatalysts for generating oxygen from alkaline water electrolysis
resolves10.1021/jp904022e
Size-Dependent Activity of Co<sub>3</sub>O<sub>4</sub> Nanoparticle Anodes for Alkaline Water Electrolysis
resolves10.1016/S0360-3199(01)00193-8
Sol–gel-derived spinel Co3O4 films and oxygen evolution: Part II. Optimization of preparation conditions and influence of the nature of the metal salt precursor
resolves10.1021/ja900023k
A Self-Healing Oxygen-Evolving Catalyst
resolves10.1007/s10800-009-9809-2
Electrochemical comparison of IrO2 prepared by anodic oxidation of pure iridium and IrO2 prepared by thermal decomposition of H2IrCl6 precursor solution
The 14 references without a DOI — listed, not checked
no DOI — not checkedW. M. Latimer , Oxidation Potentials, Prentice-Hall, New York, NY, 1938
no DOI — not checkedM. Pourbaix , Atlas of Electrochemical Equilibria in Aqueous Solutions, National Association of Corrosion Engineers, Houston, Texas, 2nd English edn, 1974
no DOI — not checkedUhlig's Handbook of Corrosion, ed. R. W. Revie, Wiley, Hoboken, NJ, 2011, ch. 7, 8, 9
no DOI — not checkedStandard conditions are defined here as T = 298.15 K and P = 101 325 Pa (1 atm): A. J.Bard, R.Parsons and J.Jordan, Standard Potentials in Aqueous Solution, Marcel Dekker, New York, 1985. The IUPAC recommendation for P is 100 000 Pa (1 bar). The difference in potentials for the purpose of this work is negligible
no DOI — not checkedS. Trasatti and G.Lodi, in Electrodes of Conductive Metallic Oxides: Part B, ed. S. Trasatti, Elsevier, Amsterdam, 1981, Chapter 10
no DOI — not checkedC1SC00516B-(cit15)/*[position()=1]
no DOI — not checkedY. Surendranath and D. G.Nocera, personal communication
no DOI — not checkedA. J. Bard and L. R.Faulkner, Electrochemical Methods: Fundamentals and Applications, John Wiley and Sons, New York, 2nd edn, 2001, ch. 3
no DOI — not checkedS. Trasatti and G.Lodi, in Electrodes of Conductive Metallic Oxides: Part B, ed. S. Trasatti, Elsevier, Amsterdam, 1981, ch. 10
no DOI — not checkedS. Trasatti and G.Lodi, in Electrodes of Conductive Metallic Oxides: Part A, ed. S. Trasatti, Elsevier, Amsterdam, 1980, ch, 7
no DOI — not checkedM. R. Tarasevich and B. N.Efremov, in Electrodes of Conductive Metallic Oxides: Part A, ed. S. Trasatti,Elsevier, Amsterdam, 1980, ch. 5
no DOI — not checkedC1SC00516B-(cit42)/*[position()=1]
no DOI — not checkedL. D. Burke , in Electrodes of Conductive Metallic Oxides: Part A, ed. S. Trasatti, Elsevier, Amsterdam, 1980, ch. 3
no DOI — not checkedR. Parsons , Handbook of Electrochemical Constants, Butterworths Scientific, London, 1959
What this badge says. CiteStamped means the CHECKABLE references of this work were clean at the dated check: each resolved to a known work in a public registry, and none carried a retraction notice at that time. It says nothing about the quality, findings, or importance of the work itself, and nothing about references deposited without a DOI.

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