A Triphasic Bifunctional Oxygen Electrocatalyst with Tunable and Synergetic Interfacial Structure for Rechargeable Zn‐Air Batteries
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Jun Lu | Shuang Li | A. Yu | Zhongwei Chen | D. Su | Tianpin Wu | Huile Jin | Shun Wang | Lu Ma | Gaoran Li | Jing Zhang | Guihua Liu | Meiling Xiao | Jianbing Zhu | Jun Lu
[1] Yi Xie,et al. Surface/Interfacial Engineering of Inorganic Low-Dimensional Electrode Materials for Electrocatalysis. , 2018, Accounts of chemical research.
[2] Jun Jiang,et al. Defective Carbon–CoP Nanoparticles Hybrids with Interfacial Charges Polarization for Efficient Bifunctional Oxygen Electrocatalysis , 2018 .
[3] Dong Su,et al. Interpenetrating Triphase Cobalt‐Based Nanocomposites as Efficient Bifunctional Oxygen Electrocatalysts for Long‐Lasting Rechargeable Zn–Air Batteries , 2018 .
[4] Jun Lu,et al. Batteries and fuel cells for emerging electric vehicle markets , 2018 .
[5] Jun Lu,et al. Defect Engineering of Chalcogen‐Tailored Oxygen Electrocatalysts for Rechargeable Quasi‐Solid‐State Zinc–Air Batteries , 2017, Advanced materials.
[6] Wei Li,et al. Atomic Modulation of FeCo–Nitrogen–Carbon Bifunctional Oxygen Electrodes for Rechargeable and Flexible All‐Solid‐State Zinc–Air Battery , 2017 .
[7] Yun Tong,et al. A Bifunctional Hybrid Electrocatalyst for Oxygen Reduction and Evolution: Cobalt Oxide Nanoparticles Strongly Coupled to B,N-Decorated Graphene. , 2017, Angewandte Chemie.
[8] X. Lou,et al. General Synthesis of Multishell Mixed-Metal Oxyphosphide Particles with Enhanced Electrocatalytic Activity in the Oxygen Evolution Reaction. , 2017, Angewandte Chemie.
[9] S. Qiao,et al. Surface and Interface Engineering of Noble-Metal-Free Electrocatalysts for Efficient Energy Conversion Processes. , 2017, Accounts of chemical research.
[10] M. G. Park,et al. Electrically Rechargeable Zinc–Air Batteries: Progress, Challenges, and Perspectives , 2017, Advanced materials.
[11] Quan Quan,et al. Electrocatalysis for the oxygen evolution reaction: recent development and future perspectives. , 2017, Chemical Society reviews.
[12] R. Jin,et al. Gold Nanoclusters Promote Electrocatalytic Water Oxidation at the Nanocluster/CoSe2 Interface. , 2017, Journal of the American Chemical Society.
[13] Liang Qiao,et al. Highly Active and Stable Graphene Tubes Decorated with FeCoNi Alloy Nanoparticles via a Template‐Free Graphitization for Bifunctional Oxygen Reduction and Evolution , 2016 .
[14] X. Lou,et al. A dual-metal–organic-framework derived electrocatalyst for oxygen reduction , 2016 .
[15] Xuefeng Zhu,et al. Enhancement of oxygen evolution performance through synergetic action between NiFe metal core and NiFeOx shell. , 2016, Chemical communications.
[16] Tao Ling,et al. Engineering surface atomic structure of single-crystal cobalt (II) oxide nanorods for superior electrocatalysis , 2016, Nature Communications.
[17] Wei Xing,et al. Metal–Organic Framework-Induced Synthesis of Ultrasmall Encased NiFe Nanoparticles Coupling with Graphene as an Efficient Oxygen Electrode for a Rechargeable Zn–Air Battery , 2016 .
[18] L. Gu,et al. Interfacial electronic effects control the reaction selectivity of platinum catalysts. , 2016, Nature materials.
[19] Jingde Li,et al. Pomegranate-Inspired Design of Highly Active and Durable Bifunctional Electrocatalysts for Rechargeable Metal-Air Batteries. , 2016, Angewandte Chemie.
[20] W. Schuhmann,et al. Co@Co3O4 Encapsulated in Carbon Nanotube-Grafted Nitrogen-Doped Carbon Polyhedra as an Advanced Bifunctional Oxygen Electrode. , 2016, Angewandte Chemie.
[21] T. Kondo,et al. Active sites of nitrogen-doped carbon materials for oxygen reduction reaction clarified using model catalysts , 2016, Science.
[22] Dehui Deng,et al. Single layer graphene encapsulating non-precious metals as high-performance electrocatalysts for water oxidation , 2016 .
[23] Wenli Bi,et al. Operando Analysis of NiFe and Fe Oxyhydroxide Electrocatalysts for Water Oxidation: Detection of Fe⁴⁺ by Mössbauer Spectroscopy. , 2015, Journal of the American Chemical Society.
[24] Yao Zheng,et al. Design of electrocatalysts for oxygen- and hydrogen-involving energy conversion reactions. , 2015, Chemical Society reviews.
[25] Changpeng Liu,et al. Meso/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 , 2015, Advanced materials.
[26] W. Schuhmann,et al. Mn(x)O(y)/NC and Co(x)O(y)/NC nanoparticles embedded in a nitrogen-doped carbon matrix for high-performance bifunctional oxygen electrodes. , 2014, Angewandte Chemie.
[27] W. Schuhmann,et al. Metal-free catalysts for oxygen reduction in alkaline electrolytes: Influence of the presence of Co, Fe, Mn and Ni inclusions , 2014 .
[28] Chih-Wen Pao,et al. Interfacial Effects in Iron-Nickel Hydroxide–Platinum Nanoparticles Enhance Catalytic Oxidation , 2014, Science.
[29] H. Kasai,et al. First-principles study on surface structure, thickness and composition dependence of the stability of Pt-skin/Pt 3 Co oxygen-reduction-reaction catalysts , 2014 .
[30] Charles C. L. McCrory,et al. Benchmarking heterogeneous electrocatalysts for the oxygen evolution reaction. , 2013, Journal of the American Chemical Society.
[31] Peter Strasser,et al. Electrocatalytic Oxygen Evolution Reaction (OER) on Ru, Ir, and Pt Catalysts: A Comparative Study of Nanoparticles and Bulk Materials , 2012 .
[32] Jun Chen,et al. Metal-air batteries: from oxygen reduction electrochemistry to cathode catalysts. , 2012, Chemical Society reviews.
[33] Zhongwei Chen,et al. A review on non-precious metal electrocatalysts for PEM fuel cells , 2011 .
[34] Lipeng Zhang,et al. Mechanisms of Oxygen Reduction Reaction on Nitrogen-Doped Graphene for Fuel Cells , 2011 .
[35] F. Du,et al. Nitrogen-Doped Carbon Nanotube Arrays with High Electrocatalytic Activity for Oxygen Reduction , 2009, Science.
[36] Jens K Nørskov,et al. Changing the activity of electrocatalysts for oxygen reduction by tuning the surface electronic structure. , 2006, Angewandte Chemie.
[37] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode , 2004 .
[38] N. Marković,et al. Surface Composition Effects in Electrocatalysis: Kinetics of Oxygen Reduction on Well-Defined Pt3Ni and Pt3Co Alloy Surfaces , 2002 .
[39] Philip N. Ross,et al. Oxygen Reduction Reaction on Pt and Pt Bimetallic Surfaces: A Selective Review , 2001 .