Recent Advances in Carbon‐Based Bifunctional Oxygen Catalysts for Zinc‐Air Batteries
暂无分享,去创建一个
Daolan Liu | Yueyu Tong | S. Dou | Xiao-Yu Yan | Ji Liang | Yueyu Tong | Daolan Liu | Ji Liang | Xiao Yan | Shi X. Dou
[1] Zhiyong Zhang,et al. Enhanced Bifunctional Oxygen Catalysis in Strained LaNiO3 Perovskites. , 2016, Journal of the American Chemical Society.
[2] Yao Zheng,et al. Graphene oxide-polydopamine derived N, S-codoped carbon nanosheets as superior bifunctional electrocatalysts for oxygen reduction and evolution , 2016 .
[3] Jing Wang,et al. N,B-codoped defect-rich graphitic carbon nanocages as high performance multifunctional electrocatalysts , 2017 .
[4] John B. Goodenough,et al. Ni3Fe‐N Doped Carbon Sheets as a Bifunctional Electrocatalyst for Air Cathodes , 2016 .
[5] Jian-feng Li,et al. NiCo Alloy Nanoparticles Decorated on N‐Doped Carbon Nanofibers as Highly Active and Durable Oxygen Electrocatalyst , 2018 .
[6] H. Meng,et al. Cobalt iron carbonate hydroxide hydrate on 3D porous carbon as active and stable bifunctional oxygen electrode for Zn–air battery , 2018, Journal of Power Sources.
[7] John Wang,et al. Hollow Co3O4 Nanosphere Embedded in Carbon Arrays for Stable and Flexible Solid‐State Zinc–Air Batteries , 2017, Advanced materials.
[8] Zhaolin Liu,et al. Improving the Electrochemical Oxygen Reduction Activity of Manganese Oxide Nanosheets with Sulfurization‐Induced Nanopores , 2018 .
[9] A. B. Jorge,et al. Freestanding Non‐Precious Metal Electrocatalysts for Oxygen Evolution and Reduction Reactions , 2018 .
[10] Jaephil Cho,et al. Tunable Internal and Surface Structures of the Bifunctional Oxygen Perovskite Catalysts , 2015 .
[11] Jun Chen,et al. Efficiently Enhancing Oxygen Reduction Electrocatalytic Activity of MnO2 Using Facile Hydrogenation , 2015 .
[12] Shun Mao,et al. High-performance bi-functional electrocatalysts of 3D crumpled graphene–cobalt oxide nanohybrids for oxygen reduction and evolution reactions , 2014 .
[13] Tierui Zhang,et al. 3D carbon nanoframe scaffold-immobilized Ni3FeN nanoparticle electrocatalysts for rechargeable zinc-air batteries’ cathodes , 2017 .
[14] Xi‐Wen Du,et al. Multiscale Structural Engineering of Ni‐Doped CoO Nanosheets for Zinc–Air Batteries with High Power Density , 2018, Advanced materials.
[15] Bin Chen,et al. Flexible Zn– and Li–air batteries: recent advances, challenges, and future perspectives , 2017 .
[16] Jinqiu Zhou,et al. An Efficient Bifunctional Electrocatalyst for a Zinc-Air Battery Derived from Fe/N/C and Bimetallic Metal-Organic Framework Composites. , 2017, ACS applied materials & interfaces.
[17] Dingshan Yu,et al. Nitrogen-doped graphene/carbon nanotube hybrids: in situ formation on bifunctional catalysts and their superior electrocatalytic activity for oxygen evolution/reduction reaction. , 2014, Small.
[18] Xi‐Wen Du,et al. Identifying the Key Role of Pyridinic‐N–Co Bonding in Synergistic Electrocatalysis for Reversible ORR/OER , 2018, Advanced materials.
[19] Biaohua Chen,et al. MO‐Co@N‐Doped Carbon (M = Zn or Co): Vital Roles of Inactive Zn and Highly Efficient Activity toward Oxygen Reduction/Evolution Reactions for Rechargeable Zn–Air Battery , 2017 .
[20] Di Bao,et al. In Situ Coupling of Strung Co4N and Intertwined N-C Fibers toward Free-Standing Bifunctional Cathode for Robust, Efficient, and Flexible Zn-Air Batteries. , 2016, Journal of the American Chemical Society.
[21] 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.
[22] Wenbin Hu,et al. Atomically Thin Mesoporous Co3O4 Layers Strongly Coupled with N‐rGO Nanosheets as High‐Performance Bifunctional Catalysts for 1D Knittable Zinc–Air Batteries , 2018, Advanced materials.
[23] Zhen Zhou,et al. Heteroatom-doped graphene as electrocatalysts for air cathodes , 2017 .
[24] Haijun Wu,et al. Single Co Atoms Anchored in Porous N-Doped Carbon for Efficient Zinc−Air Battery Cathodes , 2018, ACS Catalysis.
[25] Baosheng Li,et al. Free-standing vertically-aligned nitrogen-doped carbon nanotube arrays/graphene as air-breathing electrodes for rechargeable zinc–air batteries , 2017 .
[26] Qiang Xu,et al. Atomically Dispersed Fe/N-Doped Hierarchical Carbon Architectures Derived from a Metal–Organic Framework Composite for Extremely Efficient Electrocatalysis , 2017 .
[27] Hui Xie,et al. Atomically Dispersed Iron-Nitrogen Species as Electrocatalysts for Bifunctional Oxygen Evolution and Reduction Reactions. , 2017, Angewandte Chemie.
[28] J. Fransaer,et al. Tailor-made metal-nitrogen-carbon bifunctional electrocatalysts for rechargeable Zn-air batteries via controllable MOF units , 2019, Energy Storage Materials.
[29] Mietek Jaroniec,et al. Graphitic carbon nitride nanosheet-carbon nanotube three-dimensional porous composites as high-performance oxygen evolution electrocatalysts. , 2014, Angewandte Chemie.
[30] Zexiang Shen,et al. Recent advances in air electrodes for Zn–air batteries: electrocatalysis and structural design , 2017 .
[31] M. G. Park,et al. Electrically Rechargeable Zinc–Air Batteries: Progress, Challenges, and Perspectives , 2017, Advanced materials.
[32] Xingbin Yan,et al. Advances in Manganese‐Based Oxides Cathodic Electrocatalysts for Li–Air Batteries , 2018 .
[33] J. Nørskov,et al. Electrolysis of water on oxide surfaces , 2007 .
[34] Hui Cheng,et al. CuCo Bimetallic Oxide Quantum Dot Decorated Nitrogen‐Doped Carbon Nanotubes: A High‐Efficiency Bifunctional Oxygen Electrode for Zn–Air Batteries , 2017 .
[35] Hui-Ming Cheng,et al. A 3D bi-functional porous N-doped carbon microtube sponge electrocatalyst for oxygen reduction and oxygen evolution reactions , 2016 .
[36] Hui Cheng,et al. ZnCo2O4 Quantum Dots Anchored on Nitrogen‐Doped Carbon Nanotubes as Reversible Oxygen Reduction/Evolution Electrocatalysts , 2016, Advanced materials.
[37] J. Goodenough,et al. Design principles for oxygen-reduction activity on perovskite oxide catalysts for fuel cells and metal-air batteries. , 2011, Nature chemistry.
[38] T. Truong,et al. Morphological and crystalline evolution of nanostructured MnO2 and its application in lithium--air batteries. , 2012, ACS nano.
[39] Xinglong Gou,et al. Nitrogen and Phosphorus Dual-Doped Graphene/Carbon Nanosheets as Bifunctional Electrocatalysts for Oxygen Reduction and Evolution , 2015 .
[40] S. Lee,et al. Highly active and durable nitrogen doped-reduced graphene oxide/double perovskite bifunctional hybrid catalysts , 2017 .
[41] Wei Huang,et al. N, P Co‐doped Hierarchical Porous Graphene as a Metal‐Free Bifunctional Air Cathode for Zn−Air Batteries , 2018 .
[42] J. Tu,et al. Multiscale Porous Carbon Nanomaterials for Applications in Advanced Rechargeable Batteries , 2018, Batteries & Supercaps.
[43] S. Dai,et al. Coupling FeNi alloys and hollow nitrogen-enriched carbon frameworks leads to high-performance oxygen electrocatalysts for rechargeable zinc–air batteries , 2019, Sustainable Energy & Fuels.
[44] Li Jin,et al. Iron encapsulated within pod-like carbon nanotubes for oxygen reduction reaction. , 2013, Angewandte Chemie.
[45] FuLin Yang,et al. Reduced Graphene Oxide-Wrapped Co9-x Fex S8 /Co,Fe-N-C Composite as Bifunctional Electrocatalyst for Oxygen Reduction and Evolution. , 2018, Small.
[46] Jun Chen,et al. Stirring-assisted hydrothermal synthesis of ultralong α-MnO2 nanowires for oxygen reduction reaction , 2016 .
[47] John B Goodenough,et al. Novel Hydrogel-Derived Bifunctional Oxygen Electrocatalyst for Rechargeable Air Cathodes. , 2016, Nano letters.
[48] John Kitchin,et al. Universality in Oxygen Evolution Electrocatalysis on Oxide Surfaces , 2011 .
[49] Zhaoping Liu,et al. Transition metal oxide-based oxygen reduction reaction electrocatalysts for energy conversion systems with aqueous electrolytes , 2018 .
[50] John R. Kitchin,et al. Number of outer electrons as descriptor for adsorption processes on transition metals and their oxides , 2013 .
[51] T. Jaramillo,et al. A bifunctional nonprecious metal catalyst for oxygen reduction and water oxidation. , 2010, Journal of the American Chemical Society.
[52] G. Fu,et al. Boosting Bifunctional Oxygen Electrocatalysis with 3D Graphene Aerogel‐Supported Ni/MnO Particles , 2018, Advanced materials.
[53] Y. Shan,et al. Covalent Phenanthroline Framework Derived FeS@Fe3C Composite Nanoparticles Embedding in N‐S‐Codoped Carbons as Highly Efficient Trifunctional Electrocatalysts , 2018, Advanced Functional Materials.
[54] L. Dai,et al. Efficient Oxygen Reduction Reaction (ORR) Catalysts Based on Single Iron Atoms Dispersed on a Hierarchically Structured Porous Carbon Framework. , 2018, Angewandte Chemie.
[55] Wei Guo,et al. Three-Dimensional Macroporous Co-Embedded N-Doped Carbon Interweaving with Carbon Nanotubes as Excellent Bifunctional Catalysts for Zn-Air Batteries. , 2017, Langmuir : the ACS journal of surfaces and colloids.
[56] Yueyu Tong,et al. Nonlithium Metal–Sulfur Batteries: Steps Toward a Leap , 2018, Advanced materials.
[57] S. Basu,et al. Microwave-assisted synthesis of porous Mn2O3 nanoballs as bifunctional electrocatalyst for oxygen reduction and evolution reaction , 2016 .
[58] Zongping Shao,et al. Toward Enhanced Oxygen Evolution on Perovskite Oxides Synthesized from Different Approaches: A Case Study of Ba0.5Sr0.5Co0.8Fe0.2O3−δ , 2016 .
[59] Gabor A. Somorjai,et al. Formation of Hollow Nanocrystals Through the Nanoscale Kirkendall Effect , 2004, Science.
[60] Jin-Young Yu,et al. Highly active and durable carbon nitride fibers as metal-free bifunctional oxygen electrodes for flexible Zn-air batteries. , 2017, Nanoscale horizons.
[61] H. Yadegari,et al. Three-dimensional MnO2 ultrathin nanosheet aerogels for high-performance Li–O2 batteries , 2015 .
[62] W. Hu,et al. Engineering Catalytic Active Sites on Cobalt Oxide Surface for Enhanced Oxygen Electrocatalysis , 2018 .
[63] M. Jaroniec,et al. Origin of the Electrocatalytic Oxygen Reduction Activity of Graphene-Based Catalysts: A Roadmap to Achieve the Best Performance , 2014, Journal of the American Chemical Society.
[64] Maria-Magdalena Titirici,et al. Active sites engineering leads to exceptional ORR and OER bifunctionality in P,N Co-doped graphene frameworks , 2017 .
[65] Xien Liu,et al. Coupling Bimetallic Oxides/Alloys and N-Doped Carbon Nanotubes as Tri-Functional Catalysts for Overall Water Splitting and Zinc-Air Batteries. , 2018, ACS Applied Materials and Interfaces.
[66] Wen Liu,et al. Co/CoP embedded in a hairy nitrogen-doped carbon polyhedron as an advanced tri-functional electrocatalyst , 2018 .
[67] Hui Li,et al. Highly active and durable core-corona structured bifunctional catalyst for rechargeable metal-air battery application. , 2011, Nano letters.
[68] Ibrahim Saana Amiinu,et al. 2D Dual‐Metal Zeolitic‐Imidazolate‐Framework‐(ZIF)‐Derived Bifunctional Air Electrodes with Ultrahigh Electrochemical Properties for Rechargeable Zinc–Air Batteries , 2018 .
[69] C. Tung,et al. NiFe Layered Double Hydroxide Nanoparticles on Co,N‐Codoped Carbon Nanoframes as Efficient Bifunctional Catalysts for Rechargeable Zinc–Air Batteries , 2017 .
[70] Zhenhai Xia,et al. A metal-free bifunctional electrocatalyst for oxygen reduction and oxygen evolution reactions. , 2015, Nature nanotechnology.
[71] Xiaoming Sun,et al. Boosting oxygen reaction activity by coupling sulfides for high-performance rechargeable metal–air battery , 2018 .
[72] Jean-Pol Dodelet,et al. Recent Advances in Electrocatalysts for Oxygen Reduction Reaction. , 2016, Chemical reviews.
[73] Jun Lu,et al. Batteries and fuel cells for emerging electric vehicle markets , 2018 .
[74] Tongtao Li,et al. Tubular Monolayer Superlattices of Hollow Mn3O4 Nanocrystals and Their Oxygen Reduction Activity. , 2017, Journal of the American Chemical Society.
[75] K. Nanda,et al. Designing N-doped carbon nanotubes and Fe–Fe3C nanostructures co-embedded in B-doped mesoporous carbon as an enduring cathode electrocatalyst for metal–air batteries , 2017 .
[76] Jaephil Cho,et al. Synergistic interaction of perovskite oxides and N-doped graphene in versatile electrocatalyst , 2019, Journal of Materials Chemistry A.
[77] Jun Jiang,et al. Defective Carbon–CoP Nanoparticles Hybrids with Interfacial Charges Polarization for Efficient Bifunctional Oxygen Electrocatalysis , 2018 .
[78] W. Schuhmann,et al. Co@Co3O4 Encapsulated in Carbon Nanotube-Grafted Nitrogen-Doped Carbon Polyhedra as an Advanced Bifunctional Oxygen Electrode. , 2016, Angewandte Chemie.
[79] W. Hu,et al. Metal–Air Batteries: From Static to Flow System , 2018, Advanced Energy Materials.
[80] Lin Yu,et al. Phase controllable synthesis of three-dimensional star-like MnO2 hierarchical architectures as highly efficient and stable oxygen reduction electrocatalysts , 2016 .
[81] Juan-Yu Yang,et al. N,S-Atom-coordinated Co9S8 trinary dopants within a porous graphene framework as efficient catalysts for oxygen reduction/evolution reactions. , 2018, Dalton transactions.
[82] Hongbin Cao,et al. Atomic Co/Ni dual sites and Co/Ni alloy nanoparticles in N-doped porous Janus-like carbon frameworks for bifunctional oxygen electrocatalysis , 2019, Applied Catalysis B: Environmental.
[83] Yutao Li,et al. Oxidizing Vacancies in Nitrogen‐Doped Carbon Enhance Air‐Cathode Activity , 2018, Advanced materials.
[84] L. Dai,et al. A photo-responsive bifunctional electrocatalyst for oxygen reduction and evolution reactions , 2018 .
[85] Min Gyu Kim,et al. Optimizing nanoparticle perovskite for bifunctional oxygen electrocatalysis , 2016 .
[86] Jin Zhao,et al. Significant Contribution of Intrinsic Carbon Defects to Oxygen Reduction Activity , 2015 .
[87] J. Goodenough,et al. A Perovskite Oxide Optimized for Oxygen Evolution Catalysis from Molecular Orbital Principles , 2011, Science.
[88] Lin Yu,et al. Three-dimensional radial α-MnO2 synthesized from different redox potential for bifunctional oxygen electrocatalytic activities , 2017 .
[89] John Wang,et al. Decorating Co/CoNx nanoparticles in nitrogen-doped carbon nanoarrays for flexible and rechargeable zinc-air batteries , 2019, Energy Storage Materials.
[90] Wei Xia,et al. Platinfreie Nanomaterialien für die Sauerstoffreduktion , 2016 .
[91] Zhongwei Chen,et al. Two-Dimensional Phosphorus-Doped Carbon Nanosheets with Tunable Porosity for Oxygen Reactions in Zinc-Air Batteries , 2018 .
[92] Dan Zhao,et al. Electrocatalysts Derived from Metal-Organic Frameworks for Oxygen Reduction and Evolution Reactions in Aqueous Media. , 2017, Small.
[93] Yong‐Mook Kang,et al. α-MnO2 Nanowire-Anchored Highly Oxidized Cluster as a Catalyst for Li-O2 Batteries: Superior Electrocatalytic Activity and High Functionality. , 2018, Angewandte Chemie.
[94] Bin Wang,et al. Anion‐Regulated Hydroxysulfide Monoliths as OER/ORR/HER Electrocatalysts and their Applications in Self‐Powered Electrochemical Water Splitting , 2018 .
[95] Liming Dai,et al. Multifunctional electrocatalysts derived from conducting polymer and metal organic framework complexes , 2018 .
[96] Lei Wen,et al. Engineering of lithium-metal anodes towards a safe and stable battery , 2018, Energy Storage Materials.
[97] D. Xue,et al. Self‐Powered Water‐Splitting Devices by Core–Shell NiFe@N‐Graphite‐Based Zn–Air Batteries , 2018 .
[98] Tian-Yi Ma,et al. Self-supported electrocatalysts for advanced energy conversion processes , 2016 .
[99] F. Rosei,et al. Interfacial Reaction‐Directed Synthesis of Ce–Mn Binary Oxide Nanotubes and Their Applications in CO Oxidation and Water Treatment , 2012 .
[100] W. Schuhmann,et al. Eine Stickstoff‐dotierte Kohlenstoffmatrix mit eingeschlossenen MnxOy/NC‐ und CoxOy/NC‐Nanopartikeln für leistungsfähige bifunktionale Sauerstoffelektroden , 2014 .
[101] Zhonghua Xiang,et al. Superior oxygen electrocatalysts derived from predesigned covalent organic polymers for zinc-air flow batteries. , 2018, Nanoscale.
[102] Chengzhou Zhu,et al. Single-Atom Electrocatalysts. , 2017, Angewandte Chemie.
[103] Li Wei,et al. Milk powder-derived bifunctional oxygen electrocatalysts for rechargeable Zn-air battery , 2018 .
[104] T. Ohsaka,et al. Manganese oxide nanoparticles electrodeposited on platinum are superior to platinum for oxygen reduction. , 2006, Angewandte Chemie.
[105] S. Ramakrishna,et al. Cobalt nanoparticles encapsulated in carbon nanotube-grafted nitrogen and sulfur co-doped multichannel carbon fibers as efficient bifunctional oxygen electrocatalysts , 2017 .
[106] Dan Zhao,et al. A metal-free ORR/OER bifunctional electrocatalyst derived from metal-organic frameworks for rechargeable Zn-Air batteries , 2020 .
[107] Geoffrey I N Waterhouse,et al. Defect‐Engineered Ultrathin δ‐MnO2 Nanosheet Arrays as Bifunctional Electrodes for Efficient Overall Water Splitting , 2017 .
[108] Yufang Zhu,et al. Novel Route to Fe‐Based Cathode as an Efficient Bifunctional Catalysts for Rechargeable Zn–Air Battery , 2018 .
[109] Yunhui Huang,et al. Ultranarrow Graphene Nanoribbons toward Oxygen Reduction and Evolution Reactions , 2018, Advanced science.
[110] Simin Li,et al. Nickel Nanoparticles Encapsulated in Nitrogen-Doped Carbon Nanotubes as Excellent Bifunctional Oxygen Electrode for Fuel Cell and Metal–Air Battery , 2018, ACS Sustainable Chemistry & Engineering.
[111] Xin Wang,et al. A metal–organic framework-derived bifunctional oxygen electrocatalyst , 2016, Nature Energy.
[112] Jian Qiao,et al. All-in-One Bifunctional Oxygen Electrode Films for Flexible Zn-Air Batteries. , 2018, Small.
[114] W. Hou,et al. NiFe layered double hydroxide/reduced graphene oxide nanohybrid as an efficient bifunctional electrocatalyst for oxygen evolution and reduction reactions , 2016 .
[115] Y. Tong,et al. A Confinement Strategy for Stabilizing ZIF‐Derived Bifunctional Catalysts as a Benchmark Cathode of Flexible All‐Solid‐State Zinc–Air Batteries , 2018, Advanced materials.
[116] Prashant K. Sharma,et al. Heteroatom-doped graphene ‘Idli’: A green and foody approach towards development of metal free bifunctional catalyst for rechargeable zinc-air battery , 2016 .
[117] Y. Shao-horn,et al. Recent Insights into Manganese Oxides in Catalyzing Oxygen Reduction Kinetics , 2015 .
[118] M. Willinger,et al. Spinel Mn-Co oxide in N-doped carbon nanotubes as a bifunctional electrocatalyst synthesized by oxidative cutting. , 2014, Journal of the American Chemical Society.
[119] Doron Aurbach,et al. Challenges in the development of advanced Li-ion batteries: a review , 2011 .
[120] Jiaqi Huang,et al. Lithium–Sulfur Batteries: Co‐Existence of Challenges and Opportunities , 2018, Advanced Functional Materials.
[121] Le Zhou,et al. Enhancing Electron Transfer and Electrocatalytic Activity on Crystalline Carbon-Conjugated g-C3N4 , 2018 .
[122] D. Carroll,et al. Colloidal Cobalt Phosphide Nanocrystals as Trifunctional Electrocatalysts for Overall Water Splitting Powered by a Zinc–Air Battery , 2018, Advanced materials.
[123] Zhichuan J. Xu,et al. Cations in Octahedral Sites: A Descriptor for Oxygen Electrocatalysis on Transition‐Metal Spinels , 2017, Advanced materials.
[124] L. Gu,et al. ZIF-8/ZIF-67-Derived Co-Nx -Embedded 1D Porous Carbon Nanofibers with Graphitic Carbon-Encased Co Nanoparticles as an Efficient Bifunctional Electrocatalyst. , 2018, Small.
[125] Qiang Zhang,et al. Can metal–nitrogen–carbon catalysts satisfy oxygen electrochemistry? , 2016 .
[126] Qiang Zhang,et al. Nanocarbon for Oxygen Reduction Electrocatalysis: Dopants, Edges, and Defects , 2017, Advanced materials.
[127] Jaephil Cho,et al. Highly active bifunctional oxygen electrocatalysts derived from nickel- or cobalt-phytic acid xerogel for zinc-air batteries. , 2018, Nanoscale.
[128] Yunhui Huang,et al. In Situ Exfoliating and Generating Active Sites on Graphene Nanosheets Strongly Coupled with Carbon Fiber toward Self‐Standing Bifunctional Cathode for Rechargeable Zn–Air Batteries , 2018 .
[129] S. Qiao,et al. Surface and Interface Engineering of Noble-Metal-Free Electrocatalysts for Efficient Energy Conversion Processes. , 2017, Accounts of chemical research.
[130] Zhongfan Liu,et al. Carbon‐Nanomaterial‐Based Flexible Batteries for Wearable Electronics , 2019, Advanced materials.
[131] Si Zhou,et al. Metal–Organic‐Framework‐Derived Hybrid Carbon Nanocages as a Bifunctional Electrocatalyst for Oxygen Reduction and Evolution , 2017, Advanced materials.
[132] Jaephil Cho,et al. A Metal-Free N and P-Codoped Carbon Nanosphere as Bifunctional Electrocatalyst for Rechargeable Zinc-Air Batteries , 2018, ChemElectroChem.
[133] Bingbing Tian,et al. B, N Codoped and Defect‐Rich Nanocarbon Material as a Metal‐Free Bifunctional Electrocatalyst for Oxygen Reduction and Evolution Reactions , 2018, Advanced science.
[134] Hongjie Dai,et al. Recent advances in zinc-air batteries. , 2014, Chemical Society reviews.
[135] Jinlong Zhang,et al. Recent advances in three-dimensional graphene based materials for catalysis applications. , 2018, Chemical Society reviews.
[136] Lei Shi,et al. Single-atom cobalt electrocatalysts for foldable solid-state Zn-air battery , 2018, Nano Energy.
[137] X. Yao,et al. Seaweed biomass derived (Ni,Co)/CNT nanoaerogels: efficient bifunctional electrocatalysts for oxygen evolution and reduction reactions , 2016 .
[138] Qiang Zhang,et al. Defect Engineering toward Atomic Co–Nx–C in Hierarchical Graphene for Rechargeable Flexible Solid Zn‐Air Batteries , 2017, Advanced materials.
[139] Jiaqi Huang,et al. Toward Full Exposure of “Active Sites”: Nanocarbon Electrocatalyst with Surface Enriched Nitrogen for Superior Oxygen Reduction and Evolution Reactivity , 2014 .
[140] Zongping Shao,et al. Perovskite/Carbon Composites: Applications in Oxygen Electrocatalysis. , 2017, Small.
[141] Chunzhong Li,et al. Iron Carbide Nanoparticles Encapsulated in Mesoporous Fe-N-Doped Graphene-Like Carbon Hybrids as Efficient Bifunctional Oxygen Electrocatalysts. , 2015, ACS applied materials & interfaces.
[142] Zongping Shao,et al. Nonstoichiometric Oxides as Low-Cost and Highly-Efficient Oxygen Reduction/Evolution Catalysts for Low-Temperature Electrochemical Devices. , 2015, Chemical reviews.
[143] K. Xiao,et al. Heterostructures Composed of N-Doped Carbon Nanotubes Encapsulating Cobalt and β-Mo2 C Nanoparticles as Bifunctional Electrodes for Water Splitting. , 2019, Angewandte Chemie.
[144] Mietek Jaroniec,et al. Phosphorus-doped graphitic carbon nitrides grown in situ on carbon-fiber paper: flexible and reversible oxygen electrodes. , 2015, Angewandte Chemie.
[145] D. Cao,et al. Biomass-derived FeNi alloy and nitrogen-codoped porous carbons as highly efficient oxygen reduction and evolution bifunctional electrocatalysts for rechargeable Zn-air battery , 2018 .
[146] Wei Li,et al. Atomic Modulation of FeCo–Nitrogen–Carbon Bifunctional Oxygen Electrodes for Rechargeable and Flexible All‐Solid‐State Zinc–Air Battery , 2017 .
[147] Jianguo Liu,et al. A Metal-Amino Acid Complex-Derived Bifunctional Oxygen Electrocatalyst for Rechargeable Zinc-Air Batteries. , 2016, Small.
[148] Zhong‐Yong Yuan,et al. Direct Synthesis of Nitrogen, Phosphorus, and Sulfur Tri‐doped Carbon Nanorods as Highly Efficient Oxygen Reduction and Evolution Electrocatalysts , 2018 .
[149] W. Cai,et al. Metal-organic framework derived nitrogen-doped porous carbon@graphene sandwich-like structured composites as bifunctional electrocatalysts for oxygen reduction and evolution reactions , 2016 .
[150] Guoxiu Wang,et al. Stable and Efficient Nitrogen-Containing Carbon-Based Electrocatalysts for Reactions in Energy-Conversion Systems. , 2018, ChemSusChem.
[151] Yang Shao-Horn,et al. Toward the rational design of non-precious transition metal oxides for oxygen electrocatalysis , 2015 .
[152] Min Gyu Kim,et al. High-performance non-spinel cobalt–manganese mixed oxide-based bifunctional electrocatalysts for rechargeable zinc–air batteries , 2016 .
[153] Jung-Ho Lee,et al. Scalable 3-D Carbon Nitride Sponge as an Efficient Metal-Free Bifunctional Oxygen Electrocatalyst for Rechargeable Zn-Air Batteries. , 2017, ACS nano.
[154] Wei Zhang,et al. Morphology-Controllable Synthesis of Zn-Co-Mixed Sulfide Nanostructures on Carbon Fiber Paper Toward Efficient Rechargeable Zinc-Air Batteries and Water Electrolysis. , 2017, ACS applied materials & interfaces.
[155] Colin F. Dickens,et al. Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.
[156] Sun Tai Kim,et al. Metal–Air Batteries with High Energy Density: Li–Air versus Zn–Air , 2010 .
[157] Gengfeng Zheng,et al. Cu, Co‐Embedded N‐Enriched Mesoporous Carbon for Efficient Oxygen Reduction and Hydrogen Evolution Reactions , 2017 .
[158] Hong‐Jie Peng,et al. A review of flexible lithium-sulfur and analogous alkali metal-chalcogen rechargeable batteries. , 2017, Chemical Society reviews.
[159] J. Nørskov,et al. Towards the computational design of solid catalysts. , 2009, Nature chemistry.
[160] Xunyu Lu,et al. Electrocatalytic oxygen evolution at surface-oxidized multiwall carbon nanotubes. , 2015, Journal of the American Chemical Society.
[161] Lei Jin,et al. Titanium Containing γ‐MnO2 (TM) Hollow Spheres: One‐Step Synthesis and Catalytic Activities in Li/Air Batteries and Oxidative Chemical Reactions , 2010 .
[162] L. Dai,et al. Multifunctional Carbon‐Based Metal‐Free Electrocatalysts for Simultaneous Oxygen Reduction, Oxygen Evolution, and Hydrogen Evolution , 2017, Advanced materials.
[163] Xiao-Yu Yan,et al. A freestanding CNTs film fabricated by pyrrole-modified CVD for capacitive deionization , 2019, Surface Innovations.
[164] B. Liu,et al. Identification of catalytic sites for oxygen reduction and oxygen evolution in N-doped graphene materials: Development of highly efficient metal-free bifunctional electrocatalyst , 2016, Science Advances.
[165] Jihui Wang,et al. Controllable Synthesis of Ni xSe (0.5 ≤ x ≤ 1) Nanocrystals for Efficient Rechargeable Zinc-Air Batteries and Water Splitting. , 2018, ACS applied materials & interfaces.
[166] Min Wei,et al. Directed synthesis of carbon nanotube arrays based on layered double hydroxides toward highly-efficient bifunctional oxygen electrocatalysis , 2017 .
[167] Qiang Zhang,et al. Bifunctional Transition Metal Hydroxysulfides: Room‐Temperature Sulfurization and Their Applications in Zn–Air Batteries , 2017, Advanced materials.
[168] Zhong‐Yong Yuan,et al. Hierarchically Porous Heteroatoms‐doped Vesica‐like Carbons as Highly Efficient Bifunctional Electrocatalysts for Zn‐air Batteries , 2018, ChemCatChem.
[169] Bin Wang,et al. Defect-rich carbon fiber electrocatalysts with porous graphene skin for flexible solid-state zinc–air batteries , 2018, Energy Storage Materials.
[170] Chong Cheng,et al. Active Salt/Silica-Templated 2D Mesoporous FeCo-Nx -Carbon as Bifunctional Oxygen Electrodes for Zinc-Air Batteries. , 2018, Angewandte Chemie.
[171] Xizhang Wang,et al. Hierarchical sulfur and nitrogen co-doped carbon nanocages as efficient bifunctional oxygen electrocatalysts for rechargeable Zn-air battery , 2019, Journal of Energy Chemistry.
[172] J. Goodenough,et al. Estimating Hybridization of Transition Metal and Oxygen States in Perovskites from O K-edge X-ray Absorption Spectroscopy , 2014 .
[173] Y. Jiao,et al. Engineering of Carbon‐Based Electrocatalysts for Emerging Energy Conversion: From Fundamentality to Functionality , 2015, Advanced materials.
[174] L. Wan,et al. Understanding the High Activity of Fe-N-C Electrocatalysts in Oxygen Reduction: Fe/Fe3C Nanoparticles Boost the Activity of Fe-N(x). , 2016, Journal of the American Chemical Society.
[175] Yihua Gao,et al. Single-Site Active Iron-Based Bifunctional Oxygen Catalyst for a Compressible and Rechargeable Zinc-Air Battery. , 2018, ACS nano.
[176] W. Hu,et al. Generation of Nanoparticle, Atomic-Cluster, and Single-Atom Cobalt Catalysts from Zeolitic Imidazole Frameworks by Spatial Isolation and Their Use in Zinc-Air Batteries. , 2019, Angewandte Chemie.
[177] Lian-wen Zhu,et al. Mass production of porous biocarbon self-doped by phosphorus and nitrogen for cost-effective zinc–air batteries , 2017 .
[178] Shaojun Guo,et al. Earth-Abundant Nanomaterials for Oxygen Reduction. , 2016, Angewandte Chemie.
[179] Qin Zhong,et al. A Highly Efficient and Robust Cation Ordered Perovskite Oxide as a Bifunctional Catalyst for Rechargeable Zinc-Air Batteries. , 2017, ACS nano.
[180] Hong‐Jie Peng,et al. A Review of Functional Binders in Lithium–Sulfur Batteries , 2018, Advanced Energy Materials.
[181] Yaobing Wang,et al. Scalable Fabrication of Nanoporous Carbon Fiber Films as Bifunctional Catalytic Electrodes for Flexible Zn‐Air Batteries , 2016, Advanced materials.
[182] Wenbin Hu,et al. NiCo2S4 nanocrystals anchored on nitrogen-doped carbon nanotubes as a highly efficient bifunctional electrocatalyst for rechargeable zinc-air batteries , 2017 .
[183] M. Prabu,et al. Cobalt Sulfide Nanoparticles Grown on Nitrogen and Sulfur Codoped Graphene Oxide: An Efficient Electrocatalyst for Oxygen Reduction and Evolution Reactions , 2015 .
[184] Qiang Zhang,et al. A Review of Precious‐Metal‐Free Bifunctional Oxygen Electrocatalysts: Rational Design and Applications in Zn−Air Batteries , 2018, Advanced Functional Materials.
[185] X. Lou,et al. Porous Iron–Cobalt Alloy/Nitrogen‐Doped Carbon Cages Synthesized via Pyrolysis of Complex Metal–Organic Framework Hybrids for Oxygen Reduction , 2018 .
[186] De-gang Fu,et al. Three-Dimensional Hierarchical Architectures Derived from Surface-Mounted Metal-Organic Framework Membranes for Enhanced Electrocatalysis. , 2017, Angewandte Chemie.
[187] F. Ciucci,et al. Boosting Bifunctional Oxygen Electrolysis for N-Doped Carbon via Bimetal Addition. , 2017, Small.
[188] K. Nanda,et al. Maximizing the utilization of Fe–NxC/CNx centres for an air-cathode material and practical demonstration of metal–air batteries , 2017 .
[189] A. Vojvodić,et al. New design paradigm for heterogeneous catalysts , 2015 .
[190] Jaephil Cho,et al. A Tailored Bifunctional Electrocatalyst: Boosting Oxygen Reduction/Evolution Catalysis via Electron Transfer Between N-Doped Graphene and Perovskite Oxides. , 2018, Small.
[191] Li Wei,et al. Recent Advances in Materials and Design of Electrochemically Rechargeable Zinc-Air Batteries. , 2018, Small.
[192] Gengfeng Zheng,et al. Egg‐Derived Mesoporous Carbon Microspheres as Bifunctional Oxygen Evolution and Oxygen Reduction Electrocatalysts , 2016 .
[193] Wei Xia,et al. Perovskite-Type LaSrMnO Electrocatalyst with Uniform Porous Structure for an Efficient Li-O2 Battery Cathode. , 2016, ACS nano.
[194] Tom Regier,et al. Co₃O₄ nanocrystals on graphene as a synergistic catalyst for oxygen reduction reaction. , 2011, Nature materials.
[195] W. Hou,et al. Nitrogen doped NiFe layered double hydroxide/reduced graphene oxide mesoporous nanosphere as an effective bifunctional electrocatalyst for oxygen reduction and evolution reactions , 2017 .
[196] Zifeng Wang,et al. Texturing in situ: N,S-enriched hierarchically porous carbon as a highly active reversible oxygen electrocatalyst , 2017 .
[197] Min Gyu Kim,et al. A bifunctional perovskite catalyst for oxygen reduction and evolution. , 2014, Angewandte Chemie.
[198] Yanhui Yang,et al. Core-shell carbon materials derived from metal-organic frameworks as an efficient oxygen bifunctional electrocatalyst , 2016 .
[199] P. Chu,et al. Porous Dual‐Layered MoOx Nanotube Arrays with Highly Conductive TiN Cores for Supercapacitors , 2015 .
[200] Jin-Young Yu,et al. Hierarchically Designed 3D Holey C2N Aerogels as Bifunctional Oxygen Electrodes for Flexible and Rechargeable Zn-Air Batteries. , 2017, ACS nano.
[201] Jae-Hun Kim,et al. Metallic anodes for next generation secondary batteries. , 2013, Chemical Society reviews.
[202] X. Yao,et al. Recent Progress in Oxygen Electrocatalysts for Zinc–Air Batteries , 2017 .
[203] F. Gao,et al. Multiwall carbon nanotube encapsulated Co grown on vertically oriented graphene modified carbon cloth as bifunctional electrocatalysts for solid-state Zn-air battery , 2019, Carbon.
[204] Lei Wen,et al. Silica-Mediated Formation of Nickel Sulfide Nanosheets on CNT Films for Versatile Energy Storage. , 2019, Small.
[205] William G. Hardin,et al. Decoupling the roles of carbon and metal oxides on the electrocatalytic reduction of oxygen on La1-xSrxCoO3-δ perovskite composite electrodes. , 2019, Physical chemistry chemical physics : PCCP.
[206] Jun Chen,et al. Selective synthesis of manganese oxide nanostructures for electrocatalytic oxygen reduction. , 2009, ACS applied materials & interfaces.
[207] W. Liu,et al. From a ureidopyrimidinone containing organic precursor to excavated iron-nitrogen codoped hierarchical mesoporous carbon (Ex-FeN-MC) as an efficient bifunctional electrocatalyst. , 2018, Nanoscale.
[208] Shuangyin Wang,et al. In Situ Activating Strategy to Significantly Boost Oxygen Electrocatalysis of Commercial Carbon Cloth for Flexible and Rechargeable Zn‐Air Batteries , 2018, Advanced science.
[209] Xiongwei Wu,et al. Nanostructured positive electrode materials for post-lithium ion batteries , 2016 .
[210] Joonwon Lim,et al. Subnanometer Cobalt-Hydroxide-Anchored N-Doped Carbon Nanotube Forest for Bifunctional Oxygen Catalyst. , 2016, ACS applied materials & interfaces.
[211] Qiliang Wei,et al. Fe/Co Double Hydroxide/Oxide Nanoparticles on N‐Doped CNTs as Highly Efficient Electrocatalyst for Rechargeable Liquid and Quasi‐Solid‐State Zinc–Air Batteries , 2018, Advanced Energy Materials.
[212] Lin Yu,et al. The art of balance: Engineering of structure defects and electrical conductivity of α-MnO2 for oxygen reduction reaction , 2018, Electrochimica Acta.
[213] S. Dou,et al. A hierarchical porous Fe-N impregnated carbon-graphene hybrid for high-performance oxygen reduction reaction , 2019, Carbon.
[214] W. Schuhmann,et al. Bifunktionale Sauerstoffelektroden durch Einbettung von Co@Co3O4-Nanopartikeln in CNT-gekoppelte Stickstoff-dotierte Kohlenstoffpolyeder , 2016 .
[215] Y. Jiao,et al. Molecule-Level g-C3N4 Coordinated Transition Metals as a New Class of Electrocatalysts for Oxygen Electrode Reactions. , 2017, Journal of the American Chemical Society.
[216] Mingguang Wu,et al. Ternary doped porous carbon nanofibers with excellent ORR and OER performance for zinc–air batteries , 2018 .
[217] Mingguang Wu,et al. Nitrogen, Fluorine, and Boron Ternary Doped Carbon Fibers as Cathode Electrocatalysts for Zinc-Air Batteries. , 2018, Small.
[218] Christopher L. Brown,et al. Defect Graphene as a Trifunctional Catalyst for Electrochemical Reactions , 2016, Advanced materials.
[219] Gengfeng Zheng,et al. Nanostructured Bifunctional Redox Electrocatalysts. , 2016, Small.
[220] D. Ivey,et al. Bifunctional electrocatalysts for Zn–air batteries , 2018 .
[221] M. Nachtegaal,et al. Superior Bifunctional Electrocatalytic Activity of Ba0.5Sr0.5Co0.8Fe0.2O3‐δ/Carbon Composite Electrodes: Insight into the Local Electronic Structure , 2015 .
[222] 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.
[223] Qiang Sun,et al. Sulfur bridges between Co9S8 nanoparticles and carbon nanotubes enabling robust oxygen electrocatalysis , 2019, Carbon.
[224] J. Rusling,et al. Controlling the Active Sites of Sulfur‐Doped Carbon Nanotube–Graphene Nanolobes for Highly Efficient Oxygen Evolution and Reduction Catalysis , 2016 .
[225] Xiaoming Sun,et al. Boosting the bifunctional electrocatalytic oxygen activities of CoOx nanoarrays with a porous N-doped carbon coating and their application in Zn–air batteries , 2017 .
[226] Xiulei Ji,et al. Pyrolysis of cellulose under ammonia leads to nitrogen-doped nanoporous carbon generated through methane formation. , 2014, Nano letters.
[227] Guoxiu Wang,et al. Cobalt-doped MnO2 ultrathin nanosheets with abundant oxygen vacancies supported on functionalized carbon nanofibers for efficient oxygen evolution , 2018, Nano Energy.
[228] J. Wilcox,et al. High-performance oxygen reduction and evolution carbon catalysis: From mechanistic studies to device integration , 2017, Nano Research.
[229] Chenchen Hu,et al. Coordination-Assisted Polymerization of Mesoporous Cobalt Sulfide/Heteroatom (N,S)-Doped Double-Layered Carbon Tubes as an Efficient Bifunctional Oxygen Electrocatalyst. , 2018, ACS applied materials & interfaces.
[230] Hui Xu,et al. Transition metal (Fe, Co, Ni, and Mn) oxides for oxygen reduction and evolution bifunctional catalysts in alkaline media , 2016 .
[231] Tingzheng Hou,et al. Topological Defects in Metal‐Free Nanocarbon for Oxygen Electrocatalysis , 2016, Advanced materials.
[232] Xingcheng Xiao,et al. Graphene‐Based Nanocomposites for Energy Storage , 2016 .
[233] H. Yin,et al. Two‐Step Activated Carbon Cloth with Oxygen‐Rich Functional Groups as a High‐Performance Additive‐Free Air Electrode for Flexible Zinc–Air Batteries , 2018, Advanced Energy Materials.
[234] Qiang Zhang,et al. Multiscale Principles To Boost Reactivity in Gas-Involving Energy Electrocatalysis. , 2018, Accounts of Chemical Research.
[235] Dingshan Yu,et al. Bifunctional MOF‐Derived Carbon Photonic Crystal Architectures for Advanced Zn–Air and Li–S Batteries: Highly Exposed Graphitic Nitrogen Matters , 2017 .
[236] H. Fujii,et al. Bifunctional Oxygen Reaction Catalysis of Quadruple Manganese Perovskites , 2017, Advanced materials.
[237] Yongping Zheng,et al. Rational design of common transition metal-nitrogen-carbon catalysts for oxygen reduction reaction in fuel cells , 2016 .
[238] Yao Zheng,et al. Nanostructured metal-free electrochemical catalysts for highly efficient oxygen reduction. , 2012, Small.
[239] Yilun Li,et al. Surface‐Modified Porous Carbon Nitride Composites as Highly Efficient Electrocatalyst for Zn‐Air Batteries , 2018 .
[240] H. Fu,et al. A Stable Bifunctional Catalyst for Rechargeable Zinc-Air Batteries: Iron-Cobalt Nanoparticles Embedded in a Nitrogen-Doped 3D Carbon Matrix. , 2018, Angewandte Chemie.
[241] Yadong Li,et al. Single Cobalt Atoms with Precise N-Coordination as Superior Oxygen Reduction Reaction Catalysts. , 2016, Angewandte Chemie.
[242] D. Cao,et al. A universal principle for a rational design of single-atom electrocatalysts , 2018, Nature Catalysis.
[243] Huijun Zhao,et al. Fabrication of hierarchical iron-containing MnO2 hollow microspheres assembled by thickness-tunable nanosheets for efficient phosphate removal , 2016 .
[244] Jun Lu,et al. Defect Engineering of Chalcogen‐Tailored Oxygen Electrocatalysts for Rechargeable Quasi‐Solid‐State Zinc–Air Batteries , 2017, Advanced materials.
[245] Ibrahim Saana Amiinu,et al. From 3D ZIF Nanocrystals to Co–Nx/C Nanorod Array Electrocatalysts for ORR, OER, and Zn–Air Batteries , 2018 .
[246] Shuoqing Zhao,et al. Hydrothermal synthesis of urchin-like MnO2 nanostructures and its electrochemical character for supercapacitor , 2015 .
[247] Wenbin Hu,et al. Clarifying the Controversial Catalytic Performance of Co(OH)2 and Co3O4 for Oxygen Reduction/Evolution Reactions toward Efficient Zn-Air Batteries. , 2017, ACS applied materials & interfaces.
[248] Chenglin Yan,et al. Facilitated Oxygen Chemisorption in Heteroatom‐Doped Carbon for Improved Oxygen Reaction Activity in All‐Solid‐State Zinc–Air Batteries , 2018, Advanced materials.
[249] Zongping Shao,et al. Recent Advances in Novel Nanostructuring Methods of Perovskite Electrocatalysts for Energy‐Related Applications , 2018, Small Methods.
[250] Z. Tang,et al. Ultrathin Nitrogen-Doped Holey Carbon@Graphene Bifunctional Electrocatalyst for Oxygen Reduction and Evolution Reactions in Alkaline and Acidic Media. , 2018, Angewandte Chemie.
[251] Dang Sheng Su,et al. Heterogeneous nanocarbon materials for oxygen reduction reaction , 2014 .
[252] Jun Luo,et al. Poplar‐Catkin‐Derived N, P Co‐doped Carbon Microtubes as Efficient Oxygen Electrocatalysts for Zn‐Air Batteries , 2018 .
[253] Chang Liu,et al. Carbon nanotube encapsulated in nitrogen and phosphorus co-doped carbon as a bifunctional electrocatalyst for oxygen reduction and evolution reactions , 2018, Carbon.