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Performance of Fe–N/C Oxygen Reduction Electrocatalysts toward NO<sub>2</sub><sup>–</sup>, NO, and NH<sub>2</sub>OH Electroreduction: From Fundamental Insights into the Active Center to a New Method for Environmental Nitrite Destruction

https://doi.org/10.1021/jacs.6b09622
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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.

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The 73 checked references that resolve
resolves10.1038/nature11115
Electrocatalyst approaches and challenges for automotive fuel cells
resolves10.1126/science.1200832
High-Performance Electrocatalysts for Oxygen Reduction Derived from Polyaniline, Iron, and Cobalt
resolves10.1039/C0EE00011F
Recent advances in non-precious metal catalysis for oxygen-reduction reaction in polymer electrolyte fuelcells
resolves10.1038/ncomms1427
Iron-based cathode catalyst with enhanced power density in polymer electrolyte membrane fuel cells
resolves10.1126/science.1170051
Iron-Based Catalysts with Improved Oxygen Reduction Activity in Polymer Electrolyte Fuel Cells
resolves10.1073/pnas.1507159112
Highly efficient nonprecious metal catalyst prepared with metal–organic framework in a continuous carbon nanofibrous network
resolves10.1038/2011212a0
A New Fuel Cell Cathode Catalyst
resolves10.1149/1.2423590
Cobalt Phthalocyanine as a Fuel Cell Cathode
resolves10.1002/bbpc.19810850918
Oxygen Reduction on Transition‐Metal Porphyrins in Acid Electrolyte II. Stability
resolves10.1002/bbpc.19810850917
Oxygen Reduction on Transition‐Metal Porphyrins in Acid Electrolyte I. Activity
resolves10.1016/0013-4686(84)85006-9
Electrocatalysts for O2 reduction
resolves10.1016/0378-7753(78)85014-9
Electrocatalysis of the oxygen reduction process on metal chelates in acid electrolyte
resolves10.1021/acs.chemrev.5b00462
Recent Advances in Electrocatalysts for Oxygen Reduction Reaction
resolves10.1016/j.apcatb.2004.06.021
Activity benchmarks and requirements for Pt, Pt-alloy, and non-Pt oxygen reduction catalysts for PEMFCs
resolves10.1021/am900219g
Cross-Laboratory Experimental Study of Non-Noble-Metal Electrocatalysts for the Oxygen Reduction Reaction
resolves10.1021/jp2042526
Unveiling N-Protonation and Anion-Binding Effects on Fe/N/C Catalysts for O<sub>2</sub> Reduction in Proton-Exchange-Membrane Fuel Cells
resolves10.1039/c2cp41957b
Structure of the catalytic sites in Fe/N/C-catalysts for O2-reduction in PEM fuel cells
resolves10.1021/ja405149m
Activity Descriptor Identification for Oxygen Reduction on Nonprecious Electrocatalysts: Linking Surface Science to Coordination Chemistry
resolves10.1021/ja410076f
Correlations between Mass Activity and Physicochemical Properties of Fe/N/C Catalysts for the ORR in PEM Fuel Cell via <sup>57</sup>Fe Mössbauer Spectroscopy and Other Techniques
resolves10.1038/ncomms9618
Quantifying the density and utilization of active sites in non-precious metal oxygen electroreduction catalysts
resolves10.1021/jp500781v
Elucidating Oxygen Reduction Active Sites in Pyrolyzed Metal–Nitrogen Coordinated Non-Precious-Metal Electrocatalyst Systems
resolves10.1021/jacs.5b11015
On an Easy Way To Prepare Metal–Nitrogen Doped Carbon with Exclusive Presence of MeN<sub>4</sub>-type Sites Active for the ORR
resolves10.1007/s10863-008-9166-6
The inhibition of mitochondrial cytochrome oxidase by the gases carbon monoxide, nitric oxide, hydrogen cyanide and hydrogen sulfide: chemical mechanism and physiological significance
resolves10.1038/ncomms8343
Highly active oxygen reduction non-platinum group metal electrocatalyst without direct metal–nitrogen coordination
resolves10.1021/jp302396g
Multitechnique Characterization of a Polyaniline–Iron–Carbon Oxygen Reduction Catalyst
resolves10.1016/0022-0728(91)85233-F
The effects of cyanide on the electrochemical properties of transition metal macrocycles for oxygen reduction in alkaline solutions
resolves10.1021/jz1016284
Poisoning the Oxygen Reduction Reaction on Carbon-Supported Fe and Cu Electrocatalysts: Evidence for Metal-Centered Activity
resolves10.1021/jp309707b
Effect of pH and Azide on the Oxygen Reduction Reaction with a Pyrolyzed Fe Phthalocyanine Catalyst
resolves10.1021/cs500612k
Use of H<sub>2</sub>S to Probe the Active Sites in FeNC Catalysts for the Oxygen Reduction Reaction (ORR) in Acidic Media
resolves10.1016/0013-4686(86)80022-6
N4-chelates as electrocatalyst for cathodic oxygen reduction
resolves10.1016/j.carbon.2006.08.022
Simultaneous doping of boron and nitrogen into a carbon to enhance its oxygen reduction activity in proton exchange membrane fuel cells
resolves10.1016/j.elecom.2010.02.016
Does CO poison Fe-based catalysts for ORR?
resolves10.1039/C5TA05794A
The intriguing poison tolerance of non-precious metal oxygen reduction reaction (ORR) catalysts
resolves10.1021/ja505777v
Phenylenediamine-Based FeN<sub><i>x</i></sub>/C Catalyst with High Activity for Oxygen Reduction in Acid Medium and Its Active-Site Probing
resolves10.1039/c39730000897
Nitric oxide complexes of iron(II) and iron(III) porphyrins
resolves10.1021/cr8003696
Nitrogen Cycle Electrocatalysis
resolves10.1016/j.redox.2013.04.004
The redox interplay between nitrite and nitric oxide: From the gut to the brain
resolves10.1016/j.niox.2014.08.007
Nitrite binding to globins: linkage isomerism, EPR silence and reductive chemistry
resolves10.1021/ja4105864
Nitrite Activation to Nitric Oxide via One-fold Protonation of Iron(II)-<i>O</i>,<i>O</i>-nitrito Complex: Relevance to the Nitrite Reductase Activity of Deoxyhemoglobin and Deoxyhemerythrin
resolves10.1002/ejic.200390136
Nitric Oxide Reduction by Heme‐Thiolate Enzymes (P450nor): A Reevaluation of the Mechanism
resolves10.1038/nrd2466
The nitrate–nitrite–nitric oxide pathway in physiology and therapeutics
resolves10.1021/ja0546572
Heme Release in Myoglobin−DDAB Films and Its Role in Electrochemical NO Reduction
resolves10.1021/ja051151a
Electrochemical Reduction of NO by Hemin Adsorbed at Pyrolitic Graphite
resolves10.1021/ja203234v
Selective Catalytic Reduction at Quasi-Perfect Pt(100) Domains: A Universal Low-Temperature Pathway from Nitrite to N<sub>2</sub>
resolves10.1021/la0475831
Reduction of NO Adlayers on Pt(110) and Pt(111) in Acidic Media:  Evidence for Adsorption Site-Specific Reduction
resolves10.1016/S0013-4686(00)00678-2
Mechanistic study of the nitric oxide reduction on a polycrystalline platinum electrode
resolves10.1016/j.electacta.2003.07.020
Mechanisms of electrochemical reduction and oxidation of nitric oxide
resolves10.1016/S0022-0728(99)00367-8
Electric field effects on CO and NO adsorption at the Pt(111) surface
resolves10.1039/b008176k
A dual electrochemical sensor for nitrite and nitric oxide
resolves10.1007/978-1-61737-964-2_7
Detection of Low Levels of Nitric Oxide Using an Electrochemical Sensor
resolves10.1146/annurev-anchem-060908-155146
Analytical Chemistry of Nitric Oxide
resolves10.1016/S0022-0728(00)00407-1
Oxygen reduction on a high-surface area Pt/Vulcan carbon catalyst: a thin-film rotating ring-disk electrode study
resolves10.1149/1.1838642
Characterization of High‐Surface‐Area Electrocatalysts Using a Rotating Disk Electrode Configuration
resolves10.1021/tx00040a013
Kinetics of the Reaction of Nitric Oxide with Oxygen in Aqueous Solutions
resolves10.1016/S0008-6223(02)00292-0
Preparation of carbon-encapsulated iron carbide nanoparticles by an explosion method
resolves10.1002/anie.201204958
Iron Encapsulated within Pod‐like Carbon Nanotubes for Oxygen Reduction Reaction
resolves10.1021/jp204680p
Influence of Inner- and Outer-Sphere Electron Transfer Mechanisms during Electrocatalysis of Oxygen Reduction in Alkaline Media
resolves10.1038/ncomms13285
In situ electrochemical quantification of active sites in Fe–N/C non-precious metal catalysts
resolves10.1007/s10008-015-3060-z
On the structural composition and stability of Fe–N–C catalysts prepared by an intermediate acid leaching
resolves10.1002/celc.201600354
Mechanistic Insights into the Oxygen Reduction Reaction on Metal–N–C Electrocatalysts under Fuel Cell Conditions
resolves10.1039/C5SC04825G
The functional role of the structure of the dioxo-isobacteriochlorin in the catalytic site of cytochrome cd <sub>1</sub> for the reduction of nitrite
resolves10.1021/acs.accounts.5b00167
Heme-Nitrosyls: Electronic Structure Implications for Function in Biology
resolves10.1021/ja0206487
Mechanism of the Six-Electron Reduction of Nitrite to Ammonia by Cytochrome<i>c</i>Nitrite Reductase
resolves10.1021/nn203393d
Sulfur-Doped Graphene as an Efficient Metal-free Cathode Catalyst for Oxygen Reduction
resolves10.1021/ja209206c
Nanoporous Graphitic-C<sub>3</sub>N<sub>4</sub>@Carbon Metal-Free Electrocatalysts for Highly Efficient Oxygen Reduction
resolves10.1002/anie.201109257
BCN Graphene as Efficient Metal‐Free Electrocatalyst for the Oxygen Reduction Reaction
resolves10.1021/ja410542z
The Production of Nitrous Oxide by the Heme/Nonheme Diiron Center of Engineered Myoglobins (Fe<sub>B</sub>Mbs) Proceeds through a <i>trans</i>-Iron-Nitrosyl Dimer
resolves10.1016/j.jinorgbio.2009.09.024
Disproportionation of hydroxylamine by water-soluble iron(III) porphyrinate compounds
resolves10.1016/B978-0-12-381294-0.00020-1
Techniques for Investigating Hydroxylamine Disproportionation by Hydroxylamine Oxidoreductases
resolves10.1021/jp108350t
RRDE and Voltammetric Study of ORR on Pyrolyzed Fe/Polyaniline Catalyst. On the Origins of Variable Tafel Slopes
resolves10.1016/0008-6223(73)90080-8
Potentiodynamic analysis of surface oxides on carbon blacks
resolves10.1021/la101172f
The Influence of Solution-Phase HNO<sub>2</sub> Decomposition on the Electrocatalytic Nitrite Reduction at a Hemin−Pyrolitic Graphite Electrode
resolves10.1021/bi2015629
A “Sliding Scale Rule” for Selectivity among NO, CO, and O<sub>2</sub> by Heme Protein Sensors
The 6 references without a DOI — listed, not checked
no DOI — not checkedJahnke, D. H.; Schönborn, D. M.; Zimmermann, D. G.InPhysical and Chemical Applications of Dyestuffs;Schäfer, F. P.; Gerischer, H.; Willig, F.; Meier, H.; Jahnke, H.; Schönborn, M.; Zimmermann, G., Eds.Springer:Berlin, 1976; p133.
no DOI — not checkedStandard Potentials in Aqueous Solution
no DOI — not checkedEh-pH Diagrams for Geochemistry
no DOI — not checkedBlair, E.; Sulc, F.; Farmer, P. J.InN4-Macrocyclic Metal Complexes;Zagal, J. H.; Bedioui, F.; Dodelet, J.P., Eds.Springer:New York, 2006; p149.
no DOI — not checkedN4-Macrocyclic Metal Complexes
no DOI — not checkedref74/cit74
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