Enhanced ORR performance of Pt catalysts in acidic media by coupling with topological C defects
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Yichao Lin | C. Oloman | E. Gyenge | Yanle Li | Ziqi Tian | Jianwei Su | Yuanyuan Wang | Yan Dong | K. Jiang | Liang Chen
[1] J. Attfield,et al. Co3Mo3N—An efficient multifunctional electrocatalyst , 2021, Innovation.
[2] Abdullah M. Asiri,et al. Electrocatalytic hydrogen peroxide production in acidic media enabled by NiS2 nanosheets , 2021 .
[3] Abdullah M. Asiri,et al. Honeycomb Carbon Nanofibers: A Superhydrophilic O2-Entrapping Electrocatalyst Enables Ultrahigh Mass Activity for the Two-Electron Oxygen Reduction Reaction. , 2021, Angewandte Chemie.
[4] S. Chan,et al. Non-aqueous solution synthesis of Pt-based nanostructures for fuel cell catalysts , 2020 .
[5] K. Dong,et al. Noble-metal-free electrocatalysts toward H2O2 production , 2020 .
[6] X. Duan,et al. Beyond Extended Surfaces: Understanding the Oxygen Reduction Reaction on Nanocatalysts. , 2020, Journal of the American Chemical Society.
[7] Yongsong Luo,et al. Noble-metal-free electrospun nanomaterials as electrocatalysts for oxygen reduction reaction , 2020 .
[8] Zhiyi Lu,et al. Ammonia Thermal Treatment toward Topological Defects in Porous Carbon for Enhanced Carbon Dioxide Electroreduction , 2020, Advanced materials.
[9] L. Dai,et al. Carbon-defect-driven electroless deposition of Pt atomic clusters for highly efficient hydrogen evolution. , 2020, Journal of the American Chemical Society.
[10] Yanghua He,et al. 3D porous graphitic nanocarbon for enhancing the performance and durability of Pt catalysts: a balance between graphitization and hierarchical porosity , 2019, Energy & Environmental Science.
[11] J. Macák,et al. Optimizing the Size of Platinum Nanoparticles for Enhanced Mass Activity in the Electrochemical Oxygen Reduction Reaction. , 2019, Angewandte Chemie.
[12] Y. Ping,et al. Ruthenium atomically dispersed in carbon outperforms platinum toward hydrogen evolution in alkaline media , 2019, Nature Communications.
[13] Yi Jia,et al. Defects on carbons for electrocatalytic oxygen reduction. , 2018, Chemical Society reviews.
[14] Sean C. Smith,et al. Electroreduction of CO2 to CO on a Mesoporous Carbon Catalyst with Progressively Removed Nitrogen Moieties , 2018, ACS Energy Letters.
[15] B. Wood,et al. Graphene Defects Trap Atomic Ni Species for Hydrogen and Oxygen Evolution Reactions , 2018 .
[16] Xiaochen Shen,et al. A review of Pt-based electrocatalysts for oxygen reduction reaction , 2017 .
[17] Yuehong Su,et al. A comprehensive review of Pt electrocatalysts for the oxygen reduction reaction: Nanostructure, activity, mechanism and carbon support in PEM fuel cells , 2017 .
[18] Christopher L. Brown,et al. Defect Graphene as a Trifunctional Catalyst for Electrochemical Reactions , 2016, Advanced materials.
[19] Tingzheng Hou,et al. Topological Defects in Metal‐Free Nanocarbon for Oxygen Electrocatalysis , 2016, Advanced materials.
[20] N. Alonso‐Vante,et al. Electronic interaction between platinum nanoparticles and nitrogen-doped reduced graphene oxide: effect on the oxygen reduction reaction , 2015 .
[21] Yang Yang,et al. High lithium anodic performance of highly nitrogen-doped porous carbon prepared from a metal-organic framework , 2014, Nature Communications.
[22] J. Rossmeisl,et al. Physical and chemical nature of the scaling relations between adsorption energies of atoms on metal surfaces. , 2012, Physical review letters.
[23] J. Wilcox,et al. Mechanisms of the Oxygen Reduction Reaction on Defective Graphene-Supported Pt Nanoparticles from First-Principles , 2012 .
[24] A. Krasheninnikov,et al. Structural defects in graphene. , 2011, ACS nano.
[25] Yu Morimoto,et al. First Principles Calculations on Site-Dependent Dissolution Potentials of Supported and Unsupported Pt Particles , 2010 .
[26] Yingke Zhou,et al. First principles study of doped carbon supports for enhanced platinum catalysts. , 2010, Physical chemistry chemical physics : PCCP.
[27] Zhaolin Liu,et al. Pt Nanoparticles Supported on Nitrogen-Doped Porous Carbon Nanospheres as an Electrocatalyst for Fuel Cells , 2010 .
[28] R. O’Hayre,et al. Dopant-Induced Electronic Structure Modification of HOPG Surfaces: Implications for High Activity Fuel Cell Catalysts , 2010 .
[29] R. O’Hayre,et al. Improving PEM fuel cell catalyst activity and durability using nitrogen-doped carbon supports: observations from model Pt/HOPG systems , 2009 .
[30] A S Bondarenko,et al. Alloys of platinum and early transition metals as oxygen reduction electrocatalysts. , 2009, Nature chemistry.
[31] E. Antolini. Carbon supports for low-temperature fuel cell catalysts , 2009 .
[32] Siyu Ye,et al. Recent advances in activity and durability enhancement of Pt/C catalytic cathode in PEMFC: Part I. Physico-chemical and electronic interaction between Pt and carbon support, and activity enhancement of Pt/C catalyst , 2007 .
[33] Jens K Nørskov,et al. Changing the activity of electrocatalysts for oxygen reduction by tuning the surface electronic structure. , 2006, Angewandte Chemie.
[34] J. G. Chen,et al. Modification of the surface electronic and chemical properties of Pt(111) by subsurface 3d transition metals. , 2004, The Journal of chemical physics.
[35] Xuefeng Ren,et al. Current progress of Pt and Pt-based electrocatalysts used for fuel cells , 2020 .
[36] L. Dai,et al. Identification of active sites for acidic oxygen reduction on carbon catalysts with and without nitrogen doping , 2019, Nature Catalysis.
[37] Bongjin Simon Mun,et al. Trends in electrocatalysis on extended and nanoscale Pt-bimetallic alloy surfaces. , 2007, Nature materials.