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 71 checked references that resolve
resolves10.1039/c0ee00558dA review on non-precious metal electrocatalysts for PEM fuel cells
resolves10.1002/anie.201204958Iron Encapsulated within Pod‐like Carbon Nanotubes for Oxygen Reduction Reaction
resolves10.1016/j.electacta.2013.05.077Fabrication of iron phthalocyanine/graphene micro/nanocomposite by solvothermally assisted π–π assembling method and its application for oxygen reduction reaction
resolves10.1021/ja211433hElectrocatalytically Active Graphene–Porphyrin MOF Composite for Oxygen Reduction Reaction
resolves10.1002/cssc.201301374Excavated Fe‐N‐C Sites for Enhanced Electrocatalytic Activity in the Oxygen Reduction Reaction
resolves10.1002/aenm.201301735Fe‐N‐C Oxygen Reduction Fuel Cell Catalyst Derived from Carbendazim: Synthesis, Structure, and Reactivity
resolves10.1021/jp511515qEfficient Bifunctional Fe/C/N Electrocatalysts for Oxygen Reduction and Evolution Reaction
resolves10.1021/cs4001927Enhanced Catalytic Performance of Pt-Free Iron Phthalocyanine by Graphene Support for Efficient Oxygen Reduction Reaction
resolves10.1021/cs300579bDetermination of Iron Active Sites in Pyrolyzed Iron-Based Catalysts for the Oxygen Reduction Reaction
resolves10.1021/jacs.6b00757Understanding the High Activity of Fe–N–C Electrocatalysts in Oxygen Reduction: Fe/Fe<sub>3</sub>C Nanoparticles Boost the Activity of Fe–N<sub><i>x</i></sub>
resolves10.1021/acsnano.5b05984Experimental Observation of Redox-Induced Fe–N Switching Behavior as a Determinant Role for Oxygen Reduction Activity
resolves10.1038/nmat4367Identification of catalytic sites for oxygen reduction in iron- and nitrogen-doped graphene materials
resolves10.1021/jacs.6b08491Highly Active and Stable Catalysts of Phytic Acid-Derivative Transition Metal Phosphides for Full Water Splitting
resolves10.1021/ja511759uFe–P: A New Class of Electroactive Catalyst for Oxygen Reduction Reaction
resolves10.1021/jacs.6b11248Structural Descriptors of Zeolitic–Imidazolate Frameworks Are Keys to the Activity of Fe–N–C Catalysts
resolves10.1021/jacs.7b05130Discriminating Catalytically Active FeN<sub><i>x</i></sub> Species of Atomically Dispersed Fe–N–C Catalyst for Selective Oxidation of the C–H Bond
resolves10.1021/jacs.5b11015On an Easy Way To Prepare Metal–Nitrogen Doped Carbon with Exclusive Presence of MeN<sub>4</sub>-type Sites Active for the ORR
resolves10.1002/anie.201411450Single‐Shell Carbon‐Encapsulated Iron Nanoparticles: Synthesis and High Electrocatalytic Activity for Hydrogen Evolution Reaction
resolves10.1021/am4018225Use of Pyrolyzed Iron Ethylenediaminetetraacetic Acid Modified Activated Carbon as Air–Cathode Catalyst in Microbial Fuel Cells
resolves10.1021/acs.cgd.5b01362Microstructural Evolution of a Cu and θ-Al<sub>2</sub>O<sub>3</sub> Composite Formed By Reduction of Delafossite CuAlO<sub>2</sub>: A HAADF-STEM Study
resolves10.1021/jp5119103Variation of the Core Atomic Structure of Thiolated (Au<sub><i>x</i></sub>Ag<sub>1–<i>x</i></sub>)<sub>312±55</sub> Nanoclusters with Composition from Aberration-Corrected HAADF STEM
resolves10.1021/ja504696rNoble-Metal-Free Fe–N/C Catalyst for Highly Efficient Oxygen Reduction Reaction under Both Alkaline and Acidic Conditions
resolves10.1016/j.ssc.2007.03.052Raman spectroscopy of graphene and graphite: Disorder, electron–phonon coupling, doping and nonadiabatic effects
resolves10.1039/c0an00916dMonitoring cellular responses upon fatty acid exposure by Fourier transform infrared spectroscopy and Raman spectroscopy
resolves10.1002/adma.201500262Meso/Macroporous Nitrogen‐Doped Carbon Architectures with Iron Carbide Encapsulated in Graphitic Layers as an Efficient and Robust Catalyst for the Oxygen Reduction Reaction in Both Acidic and Alkaline Solutions
resolves10.1002/anie.201409579Ionic Liquids as Precursors for Efficient Mesoporous Iron‐Nitrogen‐Doped Oxygen Reduction Electrocatalysts
resolves10.1021/acsami.6b16498Walnut-like Porous Core/Shell TiO<sub>2</sub> with Hybridized Phases Enabling Fast and Stable Lithium Storage
resolves10.1039/C4TA02172Jα-Fe
<sub>2</sub>
O
<sub>3</sub>
spherical nanocrystals supported on CNTs as efficient non-noble electrocatalysts for the oxygen reduction reaction
resolves10.1002/smll.201401213Controllable Synthesis and Enhanced Electrocatalysis of Iron‐based Catalysts Derived From Electrospun Nanofibers
resolves10.1021/acs.jpcc.6b11721Oxygen Binding to Active Sites of Fe–N–C ORR Electrocatalysts Observed by Ambient-Pressure XPS
resolves10.1021/jp410014aIron- and Nitrogen-Functionalized Graphene Nanosheet and Nanoshell Composites as a Highly Active Electrocatalyst for Oxygen Reduction Reaction
resolves10.1021/es501527cRespective Role of Fe and Mn Oxide Contents for Arsenic Sorption in Iron and Manganese Binary Oxide: An X-ray Absorption Spectroscopy Investigation
resolves10.1063/1.2710792Hydrogen bonds in liquid water studied by photoelectron spectroscopy
resolves10.1021/jp500781vElucidating Oxygen Reduction Active Sites in Pyrolyzed Metal–Nitrogen Coordinated Non-Precious-Metal Electrocatalyst Systems
resolves10.1039/C4TA06697AThree-dimensional astrocyte-network Ni–P–O compound with superior electrocatalytic activity and stability for methanol oxidation in alkaline environments
resolves10.1039/C4NR05838KGraphene-based transition metal oxide nanocomposites for the oxygen reduction reaction
resolves10.1021/jp809987gPt/Carbon Catalyst Layer Microstructural Effects on Measured and Predicted Tafel Slopes for the Oxygen Reduction Reaction
resolves10.1021/jp108350tRRDE and Voltammetric Study of ORR on Pyrolyzed Fe/Polyaniline Catalyst. On the Origins of Variable Tafel Slopes
resolves10.1021/acscatal.5b00880Ruthenium Phosphide Synthesis and Electroactivity toward Oxygen Reduction in Acid Solutions
resolves10.1039/c2cp41957bStructure of the catalytic sites in Fe/N/C-catalysts for O2-reduction in PEM fuel cells
resolves10.1126/science.1170051Iron-Based Catalysts with Improved Oxygen Reduction Activity in Polymer Electrolyte Fuel Cells
resolves10.1021/jp802456eNature of the Catalytic Centers of Porphyrin-Based Electrocatalysts for the ORR: A Correlation of Kinetic Current Density with the Site Density of Fe−N<sub>4</sub> Centers
resolves10.1021/ja00843a015Synthesis, stereochemistry, and structure-related properties of .alpha.,.beta.,.gamma.,.delta.-tetraphenylporphinatoiron(II)
resolves10.1021/ja00787a075Syntheses of ferrous-porphyrin complexes. Hypothetical model for deoxymyoglobin
resolves10.1021/jp2042526Unveiling N-Protonation and Anion-Binding Effects on Fe/N/C Catalysts for O<sub>2</sub> Reduction in Proton-Exchange-Membrane Fuel Cells
resolves10.1021/ja410076fCorrelations 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
resolves10.1021/jp201991jMechanisms of Oxygen Reduction Reaction on Nitrogen-Doped Graphene for Fuel Cells
resolves10.1021/cs4009623DFT Prediction of Oxygen Reduction Reaction on Palladium–Copper Alloy Surfaces
resolves10.1021/acscatal.5b01154Electrochemical Formation of Reactive Oxygen Species at Pt (111)—A Density Functional Theory Study
resolves10.1039/c3ta13139dPd-induced Pt(iv) reduction to form Pd@Pt/CNT core@shell catalyst for a more complete oxygen reduction
resolves10.1023/A:1021291316033Mössbauer Study of Oxygenated Iron-Phthalocyanines, a Precursor of Magnetic Storage Material
resolves10.1021/j100452a014Moessbauer and Raman spectra of carbon-supported iron phthalocyanine
resolves10.1021/ja00839a026Picket fence porphyrins. Synthetic models for oxygen binding hemoproteins
resolves10.1021/jp207417yEffect of an Ammonia Treatment on Structure, Composition, and Oxygen Reduction Reaction Activity of Fe–N–C Catalysts
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