Atomically Dispersed Metal Catalysts for Oxygen Reduction
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[1] S. Litster,et al. Advanced PGM-free Cathode Engineering for High Power Density and Durability , 2021 .
[2] M. Swihart,et al. Achievements, challenges and perspectives on cathode catalysts in proton exchange membrane fuel cells for transportation , 2019, Nature Catalysis.
[3] Yanghua He,et al. Metal-Nitrogen-Carbon Catalysts for Oxygen Reduction in PEM Fuel Cells: Self-Template Synthesis Approach to Enhancing Catalytic Activity and Stability , 2019, Electrochemical Energy Reviews.
[4] Hui Xu,et al. Mn- and N- doped carbon as promising catalysts for oxygen reduction reaction: Theoretical prediction and experimental validation , 2019, Applied Catalysis B: Environmental.
[5] L. Wan,et al. Cascade anchoring strategy for general mass production of high-loading single-atomic metal-nitrogen catalysts , 2019, Nature Communications.
[6] Edward F. Holby,et al. Progress in the Development of Fe‐Based PGM‐Free Electrocatalysts for the Oxygen Reduction Reaction , 2019, Advanced materials.
[7] Yuyan Shao,et al. PGM‐Free Cathode Catalysts for PEM Fuel Cells: A Mini‐Review on Stability Challenges , 2019, Advanced materials.
[8] Yuyan Shao,et al. Iron‐Free Cathode Catalysts for Proton‐Exchange‐Membrane Fuel Cells: Cobalt Catalysts and the Peroxide Mitigation Approach , 2019, Advanced materials.
[9] Evan C. Wegener,et al. Highly active atomically dispersed CoN4 fuel cell cathode catalysts derived from surfactant-assisted MOFs: carbon-shell confinement strategy , 2019, Energy & Environmental Science.
[10] X. Sun,et al. An Isolated Zinc-Cobalt Atomic Pair for Highly Active and Durable Oxygen Reduction. , 2019, Angewandte Chemie.
[11] S. Mukerjee,et al. X‐Ray Absorption Spectroscopy Characterizations on PGM‐Free Electrocatalysts: Justification, Advantages, and Limitations , 2018, Advanced materials.
[12] Maria Chan,et al. Ultralow-loading platinum-cobalt fuel cell catalysts derived from imidazolate frameworks , 2018, Science.
[13] Gang Wu,et al. Metal-Organic Frameworks and Their Derived Materials as Electrocatalysts and Photocatalysts for CO2 Reduction: Progress, Challenges, and Perspectives. , 2018, Chemistry.
[14] D. Cullen,et al. Atomically dispersed manganese catalysts for oxygen reduction in proton-exchange membrane fuel cells , 2018, Nature Catalysis.
[15] Yanghua He,et al. Pt alloy nanoparticles decorated on large-size nitrogen-doped graphene tubes for highly stable oxygen-reduction catalysts. , 2018, Nanoscale.
[16] Leyu Wang,et al. Edge-Site Engineering of Atomically Dispersed Fe-N4 by Selective C-N Bond Cleavage for Enhanced Oxygen Reduction Reaction Activities. , 2018, Journal of the American Chemical Society.
[17] Shaowei Chen,et al. Carbon‐Supported Single Atom Catalysts for Electrochemical Energy Conversion and Storage , 2018, Advanced materials.
[18] P. Zelenay,et al. (Invited)Kinetic Models for the Degradation Mechanisms of PGM-Free ORR Catalysts , 2018, ECS Transactions.
[19] Chengzhou Zhu,et al. Single-Atom Catalysts for Electrochemical Water Splitting , 2018, ACS Energy Letters.
[20] J. Shui,et al. Unveiling the high-activity origin of single-atom iron catalysts for oxygen reduction reaction , 2018, Proceedings of the National Academy of Sciences.
[21] Yanghua He,et al. Ordered Pt3Co Intermetallic Nanoparticles Derived from Metal-Organic Frameworks for Oxygen Reduction. , 2018, Nano letters.
[22] Adria R. Wilson,et al. ElectroCat: DOE's approach to PGM-free catalyst and electrode R&D , 2018, Solid State Ionics.
[23] Edward F. Holby,et al. Durability challenges and perspective in the development of PGM-free electrocatalysts for the oxygen reduction reaction , 2018, Current Opinion in Electrochemistry.
[24] Rui Zhang,et al. Metal–organic framework-derived porous materials for catalysis , 2018 .
[25] Changpeng Liu,et al. Identification of binuclear Co2N5 active sites for oxygen reduction reaction with more than one magnitude higher activity than single atom CoN4 site , 2018 .
[26] Pengjian Zuo,et al. ZIF-8 with Ferrocene Encapsulated: A Promising Precursor to Single-Atom Fe Embedded Nitrogen-Doped Carbon as Highly Efficient Catalyst for Oxygen Electroreduction. , 2018, Small.
[27] D. Cullen,et al. Unveiling Active Sites of CO2 Reduction on Nitrogen-Coordinated and Atomically Dispersed Iron and Cobalt Catalysts , 2018 .
[28] Yuyan Shao,et al. Nitrogen‐Coordinated Single Cobalt Atom Catalysts for Oxygen Reduction in Proton Exchange Membrane Fuel Cells , 2018, Advanced materials.
[29] Lei Wang,et al. Nanocarbon/oxide composite catalysts for bifunctional oxygen reduction and evolution in reversible alkaline fuel cells: A mini review , 2018 .
[30] B. Liu,et al. Fe-Doped Metal-Organic Frameworks-Derived Electrocatalysts for Oxygen Reduction Reaction in Alkaline Media , 2018 .
[31] S. Karakalos,et al. 3D polymer hydrogel for high-performance atomic iron-rich catalysts for oxygen reduction in acidic media , 2017 .
[32] S. Karakalos,et al. Quaternary FeCoNiMn-Based Nanocarbon Electrocatalysts for Bifunctional Oxygen Reduction and Evolution: Promotional Role of Mn Doping in Stabilizing Carbon , 2017 .
[33] Lirong Zheng,et al. Hollow N-Doped Carbon Spheres with Isolated Cobalt Single Atomic Sites: Superior Electrocatalysts for Oxygen Reduction. , 2017, Journal of the American Chemical Society.
[34] S. Mukerjee,et al. Identification of catalytic sites in cobalt-nitrogen-carbon materials for the oxygen reduction reaction , 2017, Nature Communications.
[35] Yuyan Shao,et al. Single Atomic Iron Catalysts for Oxygen Reduction in Acidic Media: Particle Size Control and Thermal Activation. , 2017, Journal of the American Chemical Society.
[36] Bingbing Tian,et al. Recent advances in Fe (or Co)/N/C electrocatalysts for the oxygen reduction reaction in polymer electrolyte membrane fuel cells , 2017 .
[37] Gang Wu. Current challenge and perspective of PGM-free cathode catalysts for PEM fuel cells , 2017 .
[38] Karren L. More,et al. Direct atomic-level insight into the active sites of a high-performance PGM-free ORR catalyst , 2017, Science.
[39] H. Kleebe,et al. Effect of metal species on the stability of Me-N-C catalysts during accelerated stress tests mimicking the start-up and shut-down conditions , 2017 .
[40] S. Qiao,et al. Design Strategies toward Advanced MOF‐Derived Electrocatalysts for Energy‐Conversion Reactions , 2017 .
[41] Yadong Li,et al. Isolated Single Iron Atoms Anchored on N-Doped Porous Carbon as an Efficient Electrocatalyst for the Oxygen Reduction Reaction. , 2017, Angewandte Chemie.
[42] Junhua Song,et al. Metal‐Organic Framework‐Derived Non‐Precious Metal Nanocatalysts for Oxygen Reduction Reaction , 2017 .
[43] Shaojun Guo,et al. Atomically FeN2 moieties dispersed on mesoporous carbon: A new atomic catalyst for efficient oxygen reduction catalysis , 2017 .
[44] Michael J. Workman,et al. Platinum group metal-free electrocatalysts: Effects of synthesis on structure and performance in proton-exchange membrane fuel cell cathodes , 2017 .
[45] Hui Xu,et al. Engineering Favorable Morphology and Structure of Fe-N-C Oxygen-Reduction Catalysts through Tuning of Nitrogen/Carbon Precursors. , 2017, ChemSusChem.
[46] Dustin Banham,et al. Current Status and Future Development of Catalyst Materials and Catalyst Layers for Proton Exchange Membrane Fuel Cells: An Industrial Perspective , 2017, ACS Energy Letters.
[47] Ja-Yeon Choi,et al. Is the rapid initial performance loss of Fe/N/C non precious metal catalysts due to micropore flooding? , 2017 .
[48] H. Barkholtz,et al. Advancements in rationally designed PGM-free fuel cell catalysts derived from metal–organic frameworks , 2017 .
[49] Gang Wu,et al. Engineering nanostructures of PGM-free oxygen-reduction catalysts using metal-organic frameworks , 2017 .
[50] J. Rossmeisl,et al. Beyond the top of the volcano? - A unified approach to electrocatalytic oxygen reduction and oxygen evolution , 2016 .
[51] Gaixia Zhang,et al. Is iron involved in the lack of stability of Fe/N/C electrocatalysts used to reduce oxygen at the cathode of PEM fuel cells? , 2016 .
[52] Shiva Gupta,et al. Carbon nanocomposite catalysts for oxygen reduction and evolution reactions: From nitrogen doping to transition-metal addition , 2016 .
[53] Yadong Li,et al. Single Cobalt Atoms with Precise N-Coordination as Superior Oxygen Reduction Reaction Catalysts. , 2016, Angewandte Chemie.
[54] A. Frenkel,et al. Identification of carbon-encapsulated iron nanoparticles as active species in non-precious metal oxygen reduction catalysts , 2016, Nature Communications.
[55] S. Mukerjee,et al. Structural and mechanistic basis for the high activity of Fe–N–C catalysts toward oxygen reduction , 2016 .
[56] Cheng Wang,et al. Directly converting Fe-doped metal–organic frameworks into highly active and stable Fe-N-C catalysts for oxygen reduction in acid , 2016 .
[57] Anusorn Kongkanand,et al. The Priority and Challenge of High-Power Performance of Low-Platinum Proton-Exchange Membrane Fuel Cells. , 2016, The journal of physical chemistry letters.
[58] Jean-Pol Dodelet,et al. Recent Advances in Electrocatalysts for Oxygen Reduction Reaction. , 2016, Chemical reviews.
[59] M. Swihart,et al. Size-controlled large-diameter and few-walled carbon nanotube catalysts for oxygen reduction. , 2015, Nanoscale.
[60] K. Mayrhofer,et al. Stability of Fe-N-C Catalysts in Acidic Medium Studied by Operando Spectroscopy. , 2015, Angewandte Chemie.
[61] Frédéric Jaouen,et al. Identification of catalytic sites for oxygen reduction in iron- and nitrogen-doped graphene materials. , 2015, Nature materials.
[62] Junjie Li,et al. Single-Atom Pd₁/Graphene Catalyst Achieved by Atomic Layer Deposition: Remarkable Performance in Selective Hydrogenation of 1,3-Butadiene. , 2015, Journal of the American Chemical Society.
[63] Dustin Banham,et al. A review of the stability and durability of non-precious metal catalysts for the oxygen reduction reaction in proton exchange membrane fuel cells , 2015 .
[64] Yang Shao-Horn,et al. Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis , 2015 .
[65] Jaephil Cho,et al. Metal-organic framework-derived bamboo-like nitrogen-doped graphene tubes as an active matrix for hybrid oxygen-reduction electrocatalysts. , 2015, Small.
[66] V. Armel,et al. Degradation by Hydrogen Peroxide of Metal-Nitrogen-Carbon Catalysts for Oxygen Reduction , 2015 .
[67] K. Mayrhofer,et al. Degradation of Fe/N/C catalysts upon high polarization in acid medium. , 2014, Physical chemistry chemical physics : PCCP.
[68] P. Atanassov,et al. A density functional theory study of oxygen reduction reaction on non-PGM Fe-Nx-C electrocatalysts. , 2014, Physical chemistry chemical physics : PCCP.
[69] S. Ganesan,et al. Impact of transition metal on nitrogen retention and activity of iron-nitrogen-carbon oxygen reduction catalysts. , 2014, Physical chemistry chemical physics : PCCP.
[70] Guofeng Wang,et al. Reaction Pathway for Oxygen Reduction on FeN4 Embedded Graphene. , 2014, The journal of physical chemistry letters.
[71] Guofeng Wang,et al. A density functional theory study of oxygen reduction reaction on Me–N4 (Me = Fe, Co, or Ni) clusters between graphitic pores , 2013 .
[72] Piotr Zelenay,et al. Nanostructured nonprecious metal catalysts for oxygen reduction reaction. , 2013, Accounts of chemical research.
[73] P. Atanassov,et al. Catalytic activity of Co-N(x)/C electrocatalysts for oxygen reduction reaction: a density functional theory study. , 2013, Physical chemistry chemical physics : PCCP.
[74] S. Mukerjee,et al. Structure of the catalytic sites in Fe/N/C-catalysts for O2-reduction in PEM fuel cells. , 2012, Physical chemistry chemical physics : PCCP.
[75] P. Atanassov,et al. Stability, Electronic and Magnetic Properties of In-Plane Defects in Graphene: A First-Principles Study , 2012 .
[76] Jan Rossmeisl,et al. Density functional studies of functionalized graphitic materials with late transition metals for Oxygen Reduction Reactions. , 2011, Physical chemistry chemical physics : PCCP.
[77] Lorenz Gubler,et al. Radical (HO•, H• and HOO•) Formation and Ionomer Degradation in Polymer Electrolyte Fuel Cells , 2011 .
[78] S. Kim,et al. Theory, synthesis, and oxygen reduction catalysis of Fe-porphyrin-like carbon nanotube. , 2011, Physical review letters.
[79] Gang Wu,et al. High-Performance Electrocatalysts for Oxygen Reduction Derived from Polyaniline, Iron, and Cobalt , 2011, Science.
[80] Matthew Thorum,et al. Poisoning the Oxygen Reduction Reaction on Carbon-Supported Fe and Cu Electrocatalysts: Evidence for Metal-Centered Activity , 2011 .
[81] Piotr Zelenay,et al. Titanium Dioxide-supported Non-precious Metal Oxygen Reduction Electrocatalystw , 2022 .
[82] Ning Li,et al. Nitrogen-doped magnetic onion-like carbon as support for Pt particles in a hybrid cathode catalyst for fuel cells , 2010 .
[83] Kateryna Artyushkova,et al. Performance Durability of Polyaniline-derived Non-precious Cathode Catalysts , 2009 .
[84] Frédéric Jaouen,et al. Iron-Based Catalysts with Improved Oxygen Reduction Activity in Polymer Electrolyte Fuel Cells , 2009, Science.
[85] Michel Lefèvre,et al. Fe-based electrocatalysts made with microporous pristine carbon black supports for the reduction of oxygen in PEM fuel cells , 2008 .
[86] Edmar P. Marques,et al. A review of Fe-N/C and Co-N/C catalysts for the oxygen reduction reaction , 2008 .
[87] Frédéric Jaouen,et al. Fe/N/C non-precious catalysts for PEM fuel cells: Influence of the structural parameters of pristine commercial carbon blacks on their activity for oxygen reduction , 2008 .
[88] Frédéric Jaouen,et al. Heat-treated Fe/N/C catalysts for O2 electroreduction: are active sites hosted in micropores? , 2006, The journal of physical chemistry. B.
[89] R. Jasinski,et al. A New Fuel Cell Cathode Catalyst , 1964, Nature.