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 39 checked references that resolve
resolves10.1039/C4SC02685COxygen evolution on well-characterized mass-selected Ru and RuO
<sub>2</sub>
nanoparticles
resolves10.1002/anie.201411072Oxide‐Supported IrNiO<sub><i>x</i></sub> Core–Shell Particles as Efficient, Cost‐Effective, and Stable Catalysts for Electrochemical Water Splitting
resolves10.1016/j.nanoen.2017.02.045Highly active anode electrocatalysts derived from electrochemical leaching of Ru from metallic Ir0.7Ru0.3 for proton exchange membrane electrolyzers
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/jz501061nActivity–Stability Trends for the Oxygen Evolution Reaction on Monometallic Oxides in Acidic Environments
resolves10.1021/jacs.6b07199Electrochemical Catalyst–Support Effects and Their Stabilizing Role for IrO<sub><i>x</i></sub> Nanoparticle Catalysts during the Oxygen Evolution Reaction
resolves10.1021/acscatal.9b00280Degradation Mechanisms of Oxygen Evolution Reaction Electrocatalysts: A Combined Identical-Location Transmission Electron Microscopy and X-ray Photoelectron Spectroscopy Study
resolves10.1039/C5CP05296CNanostructured Ir-supported on Ti
<sub>4</sub>
O
<sub>7</sub>
as a cost-effective anode for proton exchange membrane (PEM) electrolyzers
resolves10.1002/ange.201507626Nanosized IrO<sub><i>x</i></sub>–Ir Catalyst with Relevant Activity for Anodes of Proton Exchange Membrane Electrolysis Produced by a Cost‐Effective Procedure
resolves10.1016/j.elecom.2014.08.027Stability of nanostructured iridium oxide electrocatalysts during oxygen evolution reaction in acidic environment
resolves10.1021/acs.jpclett.8b00810Operando Evidence for a Universal Oxygen Evolution Mechanism on Thermal and Electrochemical Iridium Oxides
resolves10.1016/j.pnsc.2014.03.008Addition of IrO2 to RuO2+TiO2 coated anodes and its effect on electrochemical performance of anodes in acid media
resolves10.1039/C5TA02942BAn oxygen evolution catalyst on an antimony doped tin oxide nanowire structured support for proton exchange membrane liquid water electrolysis
resolves10.1039/C4CP00238EPt nanoparticles supported on Sb-doped SnO
<sub>2</sub>
porous structures: developments and issues
resolves10.1039/C5SC00518COxide-supported Ir nanodendrites with high activity and durability for the oxygen evolution reaction in acid PEM water electrolyzers
resolves10.1039/C7TA00679AImproving the activity and stability of Ir catalysts for PEM electrolyzer anodes by SnO
<sub>2</sub>
:Sb aerogel supports: does V addition play an active role in electrocatalysis?
resolves10.3390/catal9010074Effect of Electronic Conductivities of Iridium Oxide/Doped SnO2 Oxygen-Evolving Catalysts on the Polarization Properties in Proton Exchange Membrane Water Electrolysis
resolves10.1039/C8SC00555AHighly active nano-sized iridium catalysts: synthesis and
<i>operando</i>
spectroscopy in a proton exchange membrane electrolyzer
resolves10.1016/j.jelechem.2016.05.015Oxygen evolution activity and stability of iridium in acidic media. Part 2. – Electrochemically grown hydrous iridium oxide
resolves10.1063/1.4902150Study of the oxygen vacancies changes in SnO2 polycrystalline thick films using impedance and photoemission spectroscopies
resolves10.1021/acscatal.7b01913Increasing Oxide Reducibility: The Role of Metal/Oxide Interfaces in the Formation of Oxygen Vacancies
resolves10.1021/jp046091uMetal−Oxide Interfacial Reactions: Encapsulation of Pd on TiO<sub>2</sub>(110)
resolves10.1007/s10853-016-9833-7Niobium- and antimony-doped tin dioxide aerogels as new catalyst supports for PEM fuel cells
resolves10.1149/2.1531706jesNitrogen-Doped Reduced Graphite Oxide as a Support for CoSe Electrocatalyst for Oxygen Reduction Reaction in Alkaline Media
resolves10.1063/1.3463169TEMPO: a New Insertion Device Beamline at SOLEIL for Time Resolved Photoelectron Spectroscopy Experiments on Solids and Interfaces
resolves10.1021/acs.jpclett.6b01500Uncovering the Stabilization Mechanism in Bimetallic Ruthenium–Iridium Anodes for Proton Exchange Membrane Electrolyzers
resolves10.1039/C5CP06997AThe electronic structure of iridium oxide electrodes active in water splitting
resolves10.1016/j.elspec.2013.06.007Simulation of Electron Spectra for Surface Analysis (SESSA)for quantitative interpretation of (hard) X-ray photoelectron spectra(HAXPES)
The 8 references without a DOI — listed, not checked
no DOI — not checkedref1/cit1
no DOI — not checkedEU Project REFHYNE. https://refhyne.eu/ (accessed Jan 182020).
no DOI — not checkedAir Liquide Hydrogen Energy. https://www.airliquide.com/science-new-energies/hydrogen-energy (accessed Jan 182020).
no DOI — not checkedPV Magazine. https://www.pv-magazine.com/2019/02/12/amprion-and-oge-announce-100-mw-power-to-gas-project-in-germany/ (accessed Jan 182020).
no DOI — not checkedK. A., Friedrich PlanDelyKad: Study on Large Scale Water Electrolysis and Hydrogen Storage (in German). German Federal Ministry for Economic Affairs and Energy (BMWi): Berlin, 2015. http://edok01.tib.uni-hannover.de/edoks/e01fb15/824812212.pdf (accessed Jan 18 ).
no DOI — not checkedBloomberg. https://www.bloomberg.com/news/articles/2018-04-27/rally-in-rarest-precious-metal-hots-up-as-prices-hit-record (accessed Jan 182020).
no DOI — not checkedJohnson, M. PGM Market Report February 2019. http://www.platinum.matthey.com/documents/new-item/pgm%20market%20reports/pgm_market_report_february_2019.pdf (accessed Jan 182020).
no DOI — not checkedAtomic Calculation of Photoionization Cross-Sections and Asymmetry Parameters
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