First-Row Transition Metals for Catalyzing Oxygen Redox.
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Y. Pei | Zhuo Chen | P. Pei | Keliang Wang | J. Xiong | Y. Zuo | Pengfei Zhang | Manhui Wei | Hengwei Wang | Nuo Shang | Daiyuan Zhong | Yayu Zuo
[1] Guangchao Yin,et al. A Fe Single Atom Seed‐Mediated Strategy Toward Fe3C/Fe—N—C Catalysts with Outstanding Bifunctional ORR/OER Activities , 2023, Advanced science.
[2] Xi Chen,et al. Advanced Zn-air batteries based on efficient and durable perovskite/dual-doped graphene bifunctional oxygen catalysts , 2023, Journal of Alloys and Compounds.
[3] C. Roth,et al. Carbon-Based Electrodes for Advanced Zinc-Air Batteries: Oxygen-Catalytic Site Regulation and Nanostructure Design , 2023, Electrochemical Energy Reviews.
[4] F. Alharbi,et al. A Nanosized Manganese-Based Chalcogenide Composite for Enhanced Electrocatalytic OER , 2023, Journal of Electronic Materials.
[5] S. Ji,et al. Lanthanum modified Fe3N/carbon foam as highly efficient electrode for zinc-air batteries , 2023, Journal of Alloys and Compounds.
[6] A. Saad,et al. CNTs/CNF-supported multi-active components as highly efficient bifunctional oxygen electrocatalysts and their applications in zinc-air batteries , 2023, Nano Research.
[7] Chengwu Yang,et al. The OER/ORR activities of copper oxyhydroxide series electrocatalysts , 2023, Molecular Catalysis.
[8] Yijun Zhong,et al. Engineering Self‐Supported Hydrophobic–Aerophilic Air Cathode with CoS/Fe3S4 Nanoparticles Embedded in S, N Co‐Doped Carbon Plate Arrays for Long‐Life Rechargeable Zn–Air Batteries , 2023, Advanced Energy Materials.
[9] J. Horton,et al. Engineering the Electronic Structure of Single‐Atom Iron Sites with Boosted Oxygen Bifunctional Activity for Zinc–Air Batteries , 2022, Advanced materials.
[10] Zhuo Chen,et al. Magnetoelectric Coupling for Metal–Air Batteries , 2022, Advanced Functional Materials.
[11] Yong Zhao,et al. Transition metal embedded graphynes as advanced bifunctional single atom catalysts for oxygen reduction and evolution reactions , 2022, Applied Surface Science.
[12] Mingli Xu,et al. High-performance MnO/N-rGO catalyst for half-cell and Zn-air batteries by photochemically assisted synthesis , 2022, Ceramics International.
[13] Wenlin Feng,et al. Advances in Spin Catalysts for Oxygen Evolution and Reduction Reactions. , 2022, Small.
[14] Q. Lu,et al. Structural design of supported electrocatalysts for rechargeable Zn-air batteries , 2022, Energy Storage Materials.
[15] Houzhao Wan,et al. Ag Decorated Co3O4-Nitrogen Doped Porous Carbon as the Bifunctional Cathodic Catalysts for Rechargeable Zinc-Air Batteries , 2022, Sustainability.
[16] A. Nafady,et al. Co2FeO4@rGO composite: Towards trifunctional water splitting in alkaline media , 2022, International Journal of Hydrogen Energy.
[17] Huanlei Wang,et al. Three-phases Co/Co9S8/MnS heterostructures engineering for boosted ORR/OER activities in Zn-air batteries , 2022, Materials Today Energy.
[18] Zi-hui Meng,et al. A photonic hydrogel for health self-monitoring of solid-state electrolytes in zinc-air batteries , 2022, Energy Storage Materials.
[19] Tengteng Gu,et al. Recent advances in bifunctional catalysts for zinc-air batteries: Synthesis and potential mechanisms , 2022, Science China Technological Sciences.
[20] Zachary W. Ulissi,et al. Open Challenges in Developing Generalizable Large-Scale Machine-Learning Models for Catalyst Discovery , 2022, ACS Catalysis.
[21] Chenguang Liu,et al. Interfacial Engineering of a Phase-Controlled Heterojunction for High-Efficiency HER, OER, and ORR Trifunctional Electrocatalysis , 2022, ACS omega.
[22] Weichao Wang,et al. Pd@SmMn2O5 as an Efficient Oxygen Reduction Reaction Catalyst via Triggering the Synergistic Effect between Dual Crystal Fields in Mullite , 2022, ACS Applied Energy Materials.
[23] Zhuo Wang,et al. In Situ Monitored (N, O)‐Doping of Flexible Vertical Graphene Films with High‐Flux Plasma Enhanced Chemical Vapor Deposition for Remarkable Metal‐Free Redox Catalysis Essential to Alkaline Zinc–Air Batteries , 2022, Advanced science.
[24] Hui Wang,et al. Activating Cu/Fe2O3 Nanoislands Rooted on N-rich Porous Carbon Nanosheets via the Mott-Schottky Effect for Rechargeable Zn-air battery , 2022, Chemical Engineering Journal.
[25] C. Argirusis,et al. Research progress in transition metal oxide based bifunctional electrocatalysts for aqueous electrically rechargeable zinc-air batteries , 2022, Renewable and Sustainable Energy Reviews.
[26] B. Goldsmith,et al. Interpretable machine learning for knowledge generation in heterogeneous catalysis , 2022, Nature Catalysis.
[27] A. Yu,et al. Linker-Compensated Metal-Organic Framework with Electron Delocalized Metal Sites for Bifunctional Oxygen Electrocatalysis. , 2022, Journal of the American Chemical Society.
[28] Junliang Zhang,et al. Manipulating the oxygen reduction reaction pathway on Pt-coordinated motifs , 2022, Nature Communications.
[29] Jie Sun,et al. Superdurable Bifunctional Oxygen Electrocatalyst for High-Performance Zinc-Air Batteries. , 2022, Journal of the American Chemical Society.
[30] Jingli Luo,et al. Toward Excellence of Electrocatalyst Design by Emerging Descriptor‐Oriented Machine Learning , 2022, Advanced Functional Materials.
[31] Yinghan Wang,et al. Recent Advances in ZIF-Derived Atomic Metal-N-C Electrocatalysts for Oxygen Reduction Reaction: Synthetic Strategies, Active Centers, and Stabilities. , 2022, Small.
[32] Gang Wu,et al. Atomically Dispersed Fe–Co Dual Metal Sites as Bifunctional Oxygen Electrocatalysts for Rechargeable and Flexible Zn–Air Batteries , 2022, ACS Catalysis.
[33] Gaixia Zhang,et al. Atomically Dispersed Transition Metal-Nitrogen-Carbon Bifunctional Oxygen Electrocatalysts for Zinc-Air Batteries: Recent Advances and Future Perspectives , 2021, Nano-Micro Letters.
[34] P. Pei,et al. A Highly Active Bifunctional Catalyst of Mn-Co-Fe-N/S@CNT for Rechargeable Zinc-Air Batteries , 2021, Journal of the Electrochemical Society.
[35] B. Jia,et al. Rechargeable sunlight-promoted Zn-air battery constructed by bifunctional oxygen photoelectrodes: energy-band switching between ZnO/Cu2O and ZnO/CuO in charge-discharge cycles , 2021, Chemical Engineering Journal.
[36] X. Lou. Synergetic Cobalt-Copper-Based Bimetal-Organic Framework Nanoboxes toward Efficient Electrochemical Oxygen Evolution. , 2021, Angewandte Chemie.
[37] Lei Wu,et al. Regulation and Mechanism Study of the CoS2/Cu2S-NF Heterojunction as Highly-Efficient Bifunctional Electrocatalyst for Oxygen Reactions , 2021, Applied Catalysis B: Environmental.
[38] Wen-qian Chen,et al. MOF/PCP-based Electrocatalysts for the Oxygen Reduction Reaction , 2021, Electrochemical Energy Reviews.
[39] Maliang Zhang,et al. Advanced Trifunctional Electrocatalysis with Cu N, SDoped Defect-Rich Porous Carbon for Rechargeable ZnAir Batteries and Self-Driven Water Splitting , 2021, ACS Sustainable Chemistry & Engineering.
[40] S. Ramakrishna,et al. Photo-induced green synthesis of bimetallic Ag/Pd nanoparticles decorated reduced graphene oxide/nitrogen-doped graphene quantum dots nanocomposite as an amperometric sensor for nitrite detection , 2021, Analytical and Bioanalytical Chemistry.
[41] Shuangpeng Wang,et al. Development of Perovskite Oxide-Based Electrocatalysts for Oxygen Evolution Reaction. , 2021, Small.
[42] Yun Wang,et al. Anchoring Single Copper Atoms to Microporous Carbon Spheres as High‐Performance Electrocatalyst for Oxygen Reduction Reaction , 2021, Advanced Functional Materials.
[43] Huolin L. Xin,et al. Ultrahigh‐Rate and Long‐Life Zinc–Metal Anodes Enabled by Self‐Accelerated Cation Migration , 2021, Advanced Energy Materials.
[44] R. Zou,et al. Advanced Transition Metal-Based OER Electrocatalysts: Current Status, Opportunities, and Challenges. , 2021, Small.
[45] Jiatao Zhang,et al. Cactus-like NiCo2S4@NiFe LDH hollow spheres as an effective oxygen bifunctional electrocatalyst in alkaline solution , 2021 .
[46] H. Fu,et al. Structural Design Strategy and Active Site Regulation of High-Efficient Bifunctional Oxygen Reaction Electrocatalysts for Zn-Air Battery. , 2021, Small.
[47] Shichun Mu,et al. Electronic tuning of confined sub-nanometer cobalt oxide clusters boosting oxygen catalysis and rechargeable Zn–air batteries , 2021 .
[48] H. Long,et al. Recent advances in carbonized non-noble metal–organic frameworks for electrochemical catalyst of oxygen reduction reaction , 2021, Rare Metals.
[49] Bingbing Chen,et al. Electrostatic Spun Hierarchically Porous Carbon Matrix with CoSe2/Co Heterostructure as Bifunctional Electrocatalysts for Zinc-air Batteries , 2021 .
[50] Kwangyeol Lee,et al. Dopants in the Design of Noble Metal Nanoparticle Electrocatalysts and their Effect on Surface Energy and Coordination Chemistry at the Nanocrystal Surface , 2021, Advanced Energy Materials.
[51] Kashinath Lellala. Microwave-Assisted Facile Hydrothermal Synthesis of Fe3O4–GO Nanocomposites for the Efficient Bifunctional Electrocatalytic Activity of OER/ORR , 2021 .
[52] Yusuke Yamada,et al. Enhancing the electrocatalytic activity via hybridization of Cu(I/II) oxides with Co3O4 towards oxygen electrode reactions , 2021, Journal of Power Sources.
[53] Shihan Yan,et al. Atomic layer deposited nickel sulfide for bifunctional oxygen evolution/reduction electrocatalysis and zinc–air batteries , 2021, Nanotechnology.
[54] Zongping Shao,et al. Metal-free carbon based air electrodes for Zn-air batteries: Recent advances and perspective , 2021 .
[55] Hui Yang,et al. Efficient oxygen evolution reaction in SrCo0.8Fe0.2O3-δ perovskite and surface reconstruction for practical zinc-air batteries , 2021 .
[56] P. Pei,et al. Zinc dendrite growth and inhibition strategies , 2021, Materials Today Energy.
[57] Biao Zhang,et al. Ultrastable FeCo Bifunctional Electrocatalyst on Se-Doped CNTs for Liquid and Flexible All-Solid-State Rechargeable Zn-Air Batteries. , 2021, Nano letters.
[58] Lei Wang,et al. Recent perspectives on the structure and oxygen evolution activity for non-noble metal-based catalysts , 2021 .
[59] Xiaojun Shi,et al. FeS2–CoS2 incorporated into nitrogen-doped carbon nanofibers to boost oxygen electrocatalysis for durable rechargeable Zn-air batteries , 2021 .
[60] Lina Cao,et al. Synergizing metal–support interactions and spatial confinement boosts dynamics of atomic nickel for hydrogenations , 2020, Nature Nanotechnology.
[61] Heng Wang,et al. CoOx/CoNy nanoparticles encapsulated carbon-nitride nanosheets as an efficiently trifunctional electrocatalyst for overall water splitting and Zn-air battery , 2020 .
[62] W. Goddard,et al. Oxygen evolution reaction over catalytic single-site Co in a well-defined brookite TiO2 nanorod surface , 2020, Nature Catalysis.
[63] C. Roth,et al. Bifunctional α ‐MnO 2 and Co 3 O 4 Catalyst for Oxygen Electrocatalysis in Alkaline Solution , 2020 .
[64] Geoffrey I N Waterhouse,et al. Recent Advances in the Development of Single‐Atom Catalysts for Oxygen Electrocatalysis and Zinc–Air Batteries , 2020, Advanced Energy Materials.
[65] Fang Yan,et al. ZIF-67-templated synthesis of core-shell-structured POP@MOF composite derived porous carbon with embedding FeCo alloy nanoparticles as high-performance bifunctional oxygen electrocatalysts , 2020 .
[66] S. Pennycook,et al. Atomically Dispersed Cobalt Trifunctional Electrocatalysts with Tailored Coordination Environment for Flexible Rechargeable Zn–Air Battery and Self‐Driven Water Splitting , 2020, Advanced Energy Materials.
[67] Juanxiu Xiao,et al. Electrochemical Reduction of Carbon Dioxide and Iron Oxide in Molten Salts to Fe/Fe3C Modified Carbon for Electrocatalytic Oxygen Evolution. , 2020, Angewandte Chemie.
[68] Wei Li,et al. N-doped porous carbon hollow microspheres encapsulated with iron-based nanocomposites as advanced bifunctional catalysts for rechargeable Zn-air battery , 2020 .
[69] B. C. Kim,et al. Lanthanum doped copper oxide nanoparticles enabled proficient bi-functional electrocatalyst for overall water splitting , 2020 .
[70] Changzheng Wu,et al. Recent Advances on the Modulation of Electrocatalysts Based on Transition Metal Nitrides for the Rechargeable Zn-Air Battery , 2020 .
[71] Wenjun Zhang,et al. Stable confinement of Fe/Fe3C in Fe, N-codoped carbon nanotube towards robust zinc-air batteries , 2020 .
[72] Jun Gao,et al. Cu powder decorated 3D Mn-MOF with excellent electrochemical properties for supercapacitors , 2020, Inorganica Chimica Acta.
[73] Shuhui Sun,et al. Exploiting a High-Performance "Double-Carbon" Structure Co9S8/GN Bifunctional Catalysts for Rechargeable Zn-Air Batteries. , 2020, ACS applied materials & interfaces.
[74] Jingxia Qiu,et al. Rational design of sustainable transition metal-based bifunctional electrocatalysts for oxygen reduction and evolution reactions , 2020 .
[75] Jin-Young Jung,et al. Densely colonized isolated Cu-N single sites for efficient bifunctional electrocatalysts and rechargeable advanced Zn-air batteries , 2020 .
[76] Zuhuang Chen,et al. Multi-component nanoporous alloy/(oxy)hydroxide for bifunctional oxygen electrocatalysis and rechargeable Zn-air batteries , 2020 .
[77] Yifan Wang,et al. Efficient Bifunctional Catalytic Electrodes with Uniformly Distributed NiN2 Active Sites and Channels for Long-Lasting Rechargeable Zinc-Air Batteries. , 2020, Small.
[78] Huaneng Su,et al. Highly durable carbon supported FeN nanocrystals feature as efficient bi‐functional oxygen electrocatalyst , 2020, International Journal of Energy Research.
[79] Yadong Li,et al. Synergistically Interactive Pyridinic-N-MoP Sites: Identified Active Centers for Enhanced Hydrogen Evolution in Alkaline Solution. , 2019, Angewandte Chemie.
[80] Chenxi Xu,et al. 3D N, S-co-doped carbon nanotubes/graphene/MnS ternary hybrid derived from Hummers' method for highly efficient oxygen reduction reaction , 2020, Materials Today Energy.
[81] D. Nordlund,et al. Identifying Dense NiSe2/CoSe2 Heterointerfaces Coupled with Surface High‐Valence Bimetallic Sites for Synergistically Enhanced Oxygen Electrocatalysis , 2020, Advanced materials.
[82] Ying Dai,et al. Trifunctional Electrocatalysts with High Efficiency for ORR, OER and Na-O2 Battery in Heteroatom Doped Janus Monolayer MoSSe. , 2020, ACS applied materials & interfaces.
[83] Ying Dai,et al. Holey graphitic carbon nitride (g-CN) supported bifunctional single atom electrocatalysts for highly efficient overall water splitting , 2020 .
[84] G. Sun,et al. Aqueous metal-air batteries: Fundamentals and applications , 2020 .
[85] R. Rawat,et al. Enhancing bifunctionality of CoN nanowires by Mn doping for long-lasting Zn-air batteries , 2020, Science China Chemistry.
[86] Yadong Li,et al. Chemical Synthesis of Single Atomic Site Catalysts. , 2020, Chemical reviews.
[87] Haohao Sun,et al. Highly efficient water splitting driven by zinc-air batteries with a single catalyst incorporating rich active species , 2020 .
[88] Yadong Li,et al. Modulating the local coordination environment of single-atom catalysts for enhanced catalytic performance , 2020, Nano Research.
[89] Egor V. Lobiak,et al. Mesoporous Single-Atom-Doped Graphene–Carbon Nanotube Hybrid: Synthesis and Tunable Electrocatalytic Activity for Oxygen Evolution and Reduction Reactions , 2020, ACS Catalysis.
[90] Y. Jiao,et al. Interfacial Engineering of MoO2‐FeP Heterojunction for Highly Efficient Hydrogen Evolution Coupled with Biomass Electrooxidation , 2020, Advanced materials.
[91] G. Henkelman,et al. Sulfur Loading and Speciation Control the Hydrophobicity, Electron Transfer, Reactivity, and Selectivity of Sulfidized Nanoscale Zerovalent Iron , 2020, Advanced materials.
[92] Shiming Zhou,et al. Electrochemical deposition as a universal route for fabricating single-atom catalysts , 2020, Nature Communications.
[93] Jooheon Kim,et al. Enhanced cathodic catalytic activity of an N-doped micropore structure obtained through the six-coordinate bond of an EDTA-Ce composite for the oxygen reduction reaction , 2020 .
[94] Yu‐Guo Guo,et al. Manipulating Layered P2@P3 Integrated Spinel Structure Evolution for High-Performance Sodium-Ion Battery. , 2020, Angewandte Chemie.
[95] X. Lou,et al. Non‐Noble‐Metal‐Based Electrocatalysts toward the Oxygen Evolution Reaction , 2020, Advanced Functional Materials.
[96] Z. Deng,et al. A Critical Review of Machine Learning of Energy Materials , 2020, Advanced Energy Materials.
[97] S. Liou,et al. In Situ Induction of Strain in Iron Phosphide (FeP2) Catalyst for Enhanced Hydroxide Adsorption and Water Oxidation , 2020, Advanced Functional Materials.
[98] Xiaodong Zhuang,et al. Boosting Oxygen Reduction of Single Iron Active Sites via Geometric and Electronic Engineering: Nitrogen and Phosphorus Dual-Coordination. , 2020, Journal of the American Chemical Society.
[99] Yunhui Huang,et al. Atomic-Level Fe-N-C Coupled with Fe3 C-Fe Nanocomposites in Carbon Matrixes as High-Efficiency Bifunctional Oxygen Catalysts. , 2019, Small.
[100] Yadong Li,et al. Well-Defined Materials for Heterogeneous Catalysis: From Nanoparticles to Isolated Single-Atom Sites. , 2019, Chemical reviews.
[101] Z. Seh,et al. Surface-engineered cobalt oxide nanowires as multifunctional electrocatalysts for efficient Zn-Air batteries-driven overall water splitting , 2019 .
[102] G. Fu,et al. Oxygen Vacancy-Rich In-Doped CoO/CoP Heterostructure as an Effective Air Cathode for Rechargeable Zn-Air Batteries. , 2019, Small.
[103] J. Kang,et al. Cobalt-Phosphate Catalysts with Reduced Bivalent Co ion States and Doped Nitrogen Atoms Playing as Active Sites for Facile Adsorption, Fast Charge Transfer, and Robust Stability in Photoelectrochemical Water Oxidation. , 2019, ACS applied materials & interfaces.
[104] Jin Zhao,et al. Climbing the Apex of the ORR Volcano Plot via Binuclear Site Construction: Electronic and Geometric Engineering. , 2019, Journal of the American Chemical Society.
[105] Lipeng Zhang,et al. Catalytic Mechanisms and Design Principles for Single‐Atom Catalysts in Highly Efficient CO2 Conversion , 2019, Advanced Energy Materials.
[106] I. Khan,et al. Promoted oxygen activation of layered micro-mesoporous structured titanium phosphate nanoplates by coupling nano-sized δ-MnO2 with surface pits for efficient photocatalytic oxidation of CO , 2019, Applied Catalysis B: Environmental.
[107] L. Wan,et al. Construction of Janus MnO2-NiFe Electrode via Selective Electrodeposition Strategy as a High-Performance Bifunctional Electrocatalyst for Rechargeable Zinc-air Batteries. , 2019, ACS applied materials & interfaces.
[108] Yusuke Yamauchi,et al. Graphene Nanoarchitectonics: Recent Advances in Graphene‐Based Electrocatalysts for Hydrogen Evolution Reaction , 2019, Advanced materials.
[109] L. Zhuang,et al. Atomic Cobalt on Defective Bimodal Mesoporous Carbon toward Efficient Oxygen Reduction for Zinc–Air Batteries , 2019, Small Methods.
[110] P. Jing,et al. Efficient and Durable 3D Self‐Supported Nitrogen‐Doped Carbon‐Coupled Nickel/Cobalt Phosphide Electrodes: Stoichiometric Ratio Regulated Phase‐ and Morphology‐Dependent Overall Water Splitting Performance , 2019, Advanced Functional Materials.
[111] Jiazang Chen,et al. Revealing Energetics of Surface Oxygen Redox from Kinetic Fingerprint in Oxygen Electrocatalysis. , 2019, Journal of the American Chemical Society.
[112] Shaojun Guo,et al. The Kirkendall Effect for Engineering Oxygen Vacancy of Hollow Co 3 O 4 Nanoparticles toward High‐Performance Portable Zinc–Air Batteries , 2019, Angewandte Chemie.
[113] Jinlan Wang,et al. Bifunctional Electrocatalytic Activity of Nitrogen-Doped NiO Nanosheets for Rechargeable Zn-Air Batteries. , 2019, ACS applied materials & interfaces.
[114] Zifeng Wang,et al. Advanced rechargeable zinc-based batteries: Recent progress and future perspectives , 2019, Nano Energy.
[115] Amaha Kahsay,et al. A review of transition metal‐based bifunctional oxygen electrocatalysts , 2019, Journal of the Chinese Chemical Society.
[116] W. Lu,et al. Carbon nanotube@ZIF–derived Fe-N-doped carbon electrocatalysts for oxygen reduction and evolution reactions , 2019, Journal of Solid State Electrochemistry.
[117] Gaixia Zhang,et al. Ultra-long life rechargeable zinc-air battery based on high-performance trimetallic nitride and NCNT hybrid bifunctional electrocatalysts , 2019, Nano Energy.
[118] Jiazang Chen,et al. A General Method to Probe Oxygen Evolution Intermediates at Operating Conditions , 2019, Joule.
[119] J. Guan,et al. Catalysis of Oxygen Reduction Reaction on Atomically Dispersed Copper- and Nitrogen-Codoped Graphene , 2019, ACS Applied Energy Materials.
[120] Zhongwei Chen,et al. "Ship in a Bottle" Design of Highly Efficient Bifunctional Electrocatalysts for Long-Lasting Rechargeable Zn-Air Batteries. , 2019, ACS nano.
[121] Congling Li,et al. High-performance bifunctional oxygen electrocatalysts for zinc-air batteries over mesoporous Fe/Co-N-C nanofibers with embedding FeCo alloy nanoparticles , 2019, Applied Catalysis B: Environmental.
[122] Y. Bando,et al. Monolithic electrode integrated of ultrathin NiFeP on 3D strutted graphene for bifunctionally efficient overall water splitting , 2019, Nano Energy.
[123] Weishan Li,et al. Hierarchical Co3O4 Nano‐Micro Arrays Featuring Superior Activity as Cathode in a Flexible and Rechargeable Zinc–Air Battery , 2019, Advanced science.
[124] Qiang Zhang,et al. Framework‐Porphyrin‐Derived Single‐Atom Bifunctional Oxygen Electrocatalysts and their Applications in Zn–Air Batteries , 2019, Advanced materials.
[125] L. Wan,et al. Cascade anchoring strategy for general mass production of high-loading single-atomic metal-nitrogen catalysts , 2019, Nature Communications.
[126] K. Loh,et al. Hierarchically Porous Carbon Plates Derived from Wood as Bifunctional ORR/OER Electrodes , 2019, Advanced materials.
[127] Nengneng Xu,et al. Efficient quantum dots anchored nanocomposite for highly active ORR/OER electrocatalyst of advanced metal-air batteries , 2019, Nano Energy.
[128] Sha Luo,et al. Cr‐Doped FeNi–P Nanoparticles Encapsulated into N‐Doped Carbon Nanotube as a Robust Bifunctional Catalyst for Efficient Overall Water Splitting , 2019, Advanced materials.
[129] W. Chu,et al. Ultrathin Cobalt Oxide Layers as Electrocatalysts for High‐Performance Flexible Zn–Air Batteries , 2019, Advanced materials.
[130] S. Ji,et al. N-doped mesoporous FeNx/carbon as ORR and OER bifunctional electrocatalyst for rechargeable zinc-air batteries , 2019, Electrochimica Acta.
[131] Chunwen Sun,et al. Single‐Atom Fe‐Nx‐C as an Efficient Electrocatalyst for Zinc–Air Batteries , 2019, Advanced Functional Materials.
[132] H. Hansen,et al. 2D transition metal–TCNQ sheets as bifunctional single-atom catalysts for oxygen reduction and evolution reaction (ORR/OER) , 2019 .
[133] Taeseup Song,et al. Promoting electrocatalytic overall water splitting with nanohybrid of transition metal nitride-oxynitride , 2019, Applied Catalysis B: Environmental.
[134] J. D. Brock,et al. In Situ X-ray Absorption Spectroscopy of a Synergistic Co-Mn Oxide Catalyst for the Oxygen Reduction Reaction. , 2019, Journal of the American Chemical Society.
[135] Jooho Moon,et al. Homologous CoP/NiCoP Heterostructure on N‐Doped Carbon for Highly Efficient and pH‐Universal Hydrogen Evolution Electrocatalysis , 2018, Advanced Functional Materials.
[136] W. Hu,et al. Engineering the Surface Metal Active Sites of Nickel Cobalt Oxide Nanoplates toward Enhanced Oxygen Electrocatalysis for Zn-Air Battery. , 2018, ACS applied materials & interfaces.
[137] Jun Hee Lee,et al. Highly Active Bifunctional Electrocatalysts for Oxygen Evolution and Reduction in Zn-Air Batteries. , 2018, ChemSusChem.
[138] A. Yu,et al. Recent Progress in Electrically Rechargeable Zinc–Air Batteries , 2018, Advanced materials.
[139] Jaephil Cho,et al. A Tannic Acid–Derived N‐, P‐Codoped Carbon‐Supported Iron‐Based Nanocomposite as an Advanced Trifunctional Electrocatalyst for the Overall Water Splitting Cells and Zinc–Air Batteries , 2018, Advanced Energy Materials.
[140] S. Mitchell,et al. The Multifaceted Reactivity of Single-Atom Heterogeneous Catalysts. , 2018, Angewandte Chemie.
[141] N. Zhang,et al. Dynamic Migration of Surface Fluorine Anions on Cobalt-Based Materials to Achieve Enhanced Oxygen Evolution Catalysis. , 2018, Angewandte Chemie.
[142] Shiming Zhou,et al. Electrical and structural engineering of cobalt selenide nanosheets by Mn modulation for efficient oxygen evolution , 2018, Applied Catalysis B: Environmental.
[143] M. Li,et al. A strongly cooperative spinel nanohybrid as an efficient bifunctional oxygen electrocatalyst for oxygen reduction reaction and oxygen evolution reaction , 2018, Applied Catalysis B: Environmental.
[144] Jun Luo,et al. Breaking the scaling relationship via thermally stable Pt/Cu single atom alloys for catalytic dehydrogenation , 2018, Nature Communications.
[145] 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.
[146] Shichun Mu,et al. Co2P–CoN Double Active Centers Confined in N‐Doped Carbon Nanotube: Heterostructural Engineering for Trifunctional Catalysis toward HER, ORR, OER, and Zn–Air Batteries Driven Water Splitting , 2018, Advanced Functional Materials.
[147] Michel Dupuis,et al. Water oxidation on a mononuclear manganese heterogeneous catalyst , 2018, Nature Catalysis.
[148] Yadong Li,et al. Direct transformation of bulk copper into copper single sites via emitting and trapping of atoms , 2018, Nature Catalysis.
[149] Xuanxuan Bi,et al. Atomic Layer Co3 O4 Nanosheets: The Key to Knittable Zn-Air Batteries. , 2018, Small.
[150] Ming Xiong,et al. Synthesis of Bifunctional Catalysts for Metal‐Air Batteries Through Direct Deposition Methods , 2018, Batteries & Supercaps.
[151] T. Schmidt,et al. Oxygen Evolution Reaction—The Enigma in Water Electrolysis , 2018, ACS Catalysis.
[152] Min Wei,et al. Layered Double Hydroxide‐Based Catalysts: Recent Advances in Preparation, Structure, and Applications , 2018, Advanced Functional Materials.
[153] Yadong Li,et al. Temperature-Controlled Selectivity of Hydrogenation and Hydrodeoxygenation in the Conversion of Biomass Molecule by the Ru1/mpg-C3N4 Catalyst. , 2018, Journal of the American Chemical Society.
[154] 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.
[155] Porun Liu,et al. Sandwich‐Like Reduced Graphene Oxide/Carbon Black/Amorphous Cobalt Borate Nanocomposites as Bifunctional Cathode Electrocatalyst in Rechargeable Zinc‐Air Batteries , 2018, Advanced Energy Materials.
[156] Yufang Zhu,et al. Novel Route to Fe‐Based Cathode as an Efficient Bifunctional Catalysts for Rechargeable Zn–Air Battery , 2018 .
[157] Tianyi Ma,et al. S, N co-doped carbon nanotube-encapsulated core-shelled CoS2@Co nanoparticles: efficient and stable bifunctional catalysts for overall water splitting. , 2018, Science bulletin.
[158] Xin-bo Zhang,et al. Recent Advances toward the Rational Design of Efficient Bifunctional Air Electrodes for Rechargeable Zn-Air Batteries. , 2018, Small.
[159] Yadong Li,et al. Single-Atom Catalysts: Synthetic Strategies and Electrochemical Applications , 2018, Joule.
[160] Huajie Xu,et al. MOF‐Derived Hollow CoS Decorated with CeO x Nanoparticles for Boosting Oxygen Evolution Reaction Electrocatalysis , 2018, Angewandte Chemie.
[161] Xi‐Wen Du,et al. Identifying the Key Role of Pyridinic‐N–Co Bonding in Synergistic Electrocatalysis for Reversible ORR/OER , 2018, Advanced materials.
[162] Aleksandar R. Zeradjanin,et al. Is a major breakthrough in the oxygen electrocatalysis possible? , 2018, Current Opinion in Electrochemistry.
[163] Bin Wang,et al. A Bimetallic Zn/Fe Polyphthalocyanine-Derived Single-Atom Fe-N4 Catalytic Site:A Superior Trifunctional Catalyst for Overall Water Splitting and Zn-Air Batteries. , 2018, Angewandte Chemie.
[164] Qianwang Chen,et al. O‐, N‐Atoms‐Coordinated Mn Cofactors within a Graphene Framework as Bioinspired Oxygen Reduction Reaction Electrocatalysts , 2018, Advanced materials.
[165] Yun Wang,et al. Cobalt Covalent Doping in MoS2 to Induce Bifunctionality of Overall Water Splitting , 2018, Advanced materials.
[166] Wei Hu,et al. N-doped defective carbon with trace Co for efficient rechargeable liquid electrolyte-/all-solid-state Zn-air batteries. , 2018, Science bulletin.
[167] X. Miao,et al. Tailoring the electrocatalytic activity of bimetallic nickel-iron diselenide hollow nanochains for water oxidation , 2018 .
[168] Yufang Zhu,et al. Efficient N-doping of hollow core-mesoporous shelled carbon spheres via hydrothermal treatment in ammonia solution for the electrocatalytic oxygen reduction reaction , 2018 .
[169] Y. Lai,et al. NiO-Fe2O3/carbon nanotubes composite as bifunctional electrocatalyst for rechargeable Zn-air batteries , 2018 .
[170] Shichun Mu,et al. Defective N/S-Codoped 3D Cheese-Like Porous Carbon Nanomaterial toward Efficient Oxygen Reduction and Zn-Air Batteries. , 2018, Small.
[171] Fei Wang,et al. Highly reversible zinc metal anode for aqueous batteries , 2018, Nature Materials.
[172] J. O. Flores-Flores,et al. Noncovalent functionalization of pristine CVD single-walled carbon nanotubes with 3d metal(II) phthalocyanines by adsorption from the gas phase , 2018 .
[173] Jun Lu,et al. Batteries and fuel cells for emerging electric vehicle markets , 2018 .
[174] Furio Corà,et al. Transition‐Metal‐Doped α‐MnO2 Nanorods as Bifunctional Catalysts for Efficient Oxygen Reduction and Evolution Reactions , 2018 .
[175] C. Lee,et al. Metal-Free Oxygen Evolution and Oxygen Reduction Reaction Bifunctional Electrocatalyst in Alkaline Media: From Mechanisms to Structure–Catalytic Activity Relationship , 2018 .
[176] Yuyan Shao,et al. Nitrogen‐Coordinated Single Cobalt Atom Catalysts for Oxygen Reduction in Proton Exchange Membrane Fuel Cells , 2018, Advanced materials.
[177] Yong Lu,et al. High-capacity aqueous zinc batteries using sustainable quinone electrodes , 2018, Science Advances.
[178] 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.
[179] Sung-Fu Hung,et al. Unraveling Geometrical Site Confinement in Highly Efficient Iron‐Doped Electrocatalysts toward Oxygen Evolution Reaction , 2018 .
[180] J. Nørskov,et al. Understanding Catalytic Activity Trends in the Oxygen Reduction Reaction. , 2018, Chemical reviews.
[181] Xin Wang,et al. Design of Efficient Bifunctional Oxygen Reduction/Evolution Electrocatalyst: Recent Advances and Perspectives , 2017 .
[182] X. Yao,et al. Recent Progress in Oxygen Electrocatalysts for Zinc–Air Batteries , 2017 .
[183] Li Shihua,et al. La0.8Sr0.2Co1-xMnxO3 perovskites as efficient bi-functional cathode catalysts for rechargeable zinc-air batteries , 2017 .
[184] B. Pan,et al. Highly Active Fe Sites in Ultrathin Pyrrhotite Fe7S8 Nanosheets Realizing Efficient Electrocatalytic Oxygen Evolution , 2017, ACS central science.
[185] Qiang Zhang,et al. Bifunctional Transition Metal Hydroxysulfides: Room‐Temperature Sulfurization and Their Applications in Zn–Air Batteries , 2017, Advanced materials.
[186] John B. Goodenough,et al. Hierarchically mesoporous nickel-iron nitride as a cost-efficient and highly durable electrocatalyst for Zn-air battery , 2017 .
[187] Jinwen Qin,et al. Metal–organic framework-induced construction of actiniae-like carbon nanotube assembly as advanced multifunctional electrocatalysts for overall water splitting and Zn-air batteries , 2017 .
[188] Li Wei,et al. Amorphous Bimetallic Oxide–Graphene Hybrids as Bifunctional Oxygen Electrocatalysts for Rechargeable Zn–Air Batteries , 2017, Advanced materials.
[189] 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 .
[190] L. Ai,et al. Mechanistic insight into oxygen evolution electrocatalysis of surface phosphate modified cobalt phosphide nanorod bundles and their superior performance for overall water splitting , 2017 .
[191] Junhong Chen,et al. MOF-Based Metal-Doping-Induced Synthesis of Hierarchical Porous CuN/C Oxygen Reduction Electrocatalysts for Zn-Air Batteries. , 2017, Small.
[192] 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.
[193] Dongyuan Zhao,et al. General Oriented Formation of Carbon Nanotubes from Metal-Organic Frameworks. , 2017, Journal of the American Chemical Society.
[194] J. Álvarez-Ramírez,et al. The Kinetic Parameters of the Oxygen Evolution Reaction (OER) Calculated on Inactive Anodes via EIS Transfer Functions:•OH Formation , 2017 .
[195] L. Dai,et al. Defect Chemistry of Nonprecious‐Metal Electrocatalysts for Oxygen Reactions , 2017, Advanced materials.
[196] De-jun Wang,et al. Efficient electrocatalysis of overall water splitting by ultrasmall NixCo3−xS4 coupled Ni3S2 nanosheet arrays , 2017 .
[197] J. Sohn,et al. Fe/N/S-doped mesoporous carbon nanostructures as electrocatalysts for oxygen reduction reaction in acid medium , 2017 .
[198] Shaojun Guo,et al. Hybrid carbon nanowire networks with Fe–P bond active site for efficient oxygen/hydrogen-based electrocatalysis , 2017 .
[199] S. Qiao,et al. Surface and Interface Engineering of Noble-Metal-Free Electrocatalysts for Efficient Energy Conversion Processes. , 2017, Accounts of chemical research.
[200] B. Pan,et al. Bionanofiber Assisted Decoration of Few-Layered MoSe2 Nanosheets on 3D Conductive Networks for Efficient Hydrogen Evolution. , 2017, Small.
[201] Abdullah M. Asiri,et al. Cu(OH)2 @CoCO3 (OH)2 ·nH2 O Core-Shell Heterostructure Nanowire Array: An Efficient 3D Anodic Catalyst for Oxygen Evolution and Methanol Electrooxidation. , 2017, Small.
[202] Colin F. Dickens,et al. Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.
[203] Hengxing Ji,et al. Crystalline Copper Phosphide Nanosheets as an Efficient Janus Catalyst for Overall Water Splitting. , 2017, ACS applied materials & interfaces.
[204] A. Manthiram,et al. Design of a sectionalized MnO 2 -Co 3 O 4 electrode via selective electrodeposition of metal ions in hydrogel for enhanced electrocatalytic activity in metal-air batteries , 2016 .
[205] W. Hou,et al. NiFe layered double hydroxide/reduced graphene oxide nanohybrid as an efficient bifunctional electrocatalyst for oxygen evolution and reduction reactions , 2016 .
[206] Hui Xu,et al. Transition metal (Fe, Co, Ni, and Mn) oxides for oxygen reduction and evolution bifunctional catalysts in alkaline media , 2016 .
[207] Yanhui Li,et al. NiMnO3/NiMn2O4 Oxides Synthesized via the Aid of Pollen: Ilmenite/Spinel Hybrid Nanoparticles for Highly Efficient Bifunctional Oxygen Electrocatalysis. , 2016, ACS applied materials & interfaces.
[208] Tao Ling,et al. Engineering surface atomic structure of single-crystal cobalt (II) oxide nanorods for superior electrocatalysis , 2016, Nature Communications.
[209] F. Liang,et al. Self-Supported Cedarlike Semimetallic Cu3P Nanoarrays as a 3D High-Performance Janus Electrode for Both Oxygen and Hydrogen Evolution under Basic Conditions. , 2016, ACS applied materials & interfaces.
[210] 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 .
[211] S. Shanmugam,et al. Hierarchical NiCo2S4 Nanowire Arrays Supported on Ni Foam: An Efficient and Durable Bifunctional Electrocatalyst for Oxygen and Hydrogen Evolution Reactions , 2016 .
[212] C. Mullins,et al. The Role of Anions in Metal Chalcogenide Oxygen Evolution Catalysis: Electrodeposited Thin Films of Nickel Sulfide as “Pre-catalysts” , 2016 .
[213] Zhongbo Hu,et al. Enhancing the Performance of CoO as Cathode Catalyst for Li-O2 Batteries through Confinement into Bimodal Mesoporous Carbon , 2016 .
[214] S. Qiao,et al. Efficient and Stable Bifunctional Electrocatalysts Ni/NixMy (M = P, S) for Overall Water Splitting , 2016 .
[215] Hui Cheng,et al. ZnCo2O4 Quantum Dots Anchored on Nitrogen‐Doped Carbon Nanotubes as Reversible Oxygen Reduction/Evolution Electrocatalysts , 2016, Advanced materials.
[216] Yujie Sun,et al. Hierarchically Porous Nickel Sulfide Multifunctional Superstructures , 2016 .
[217] William G. Hardin,et al. Water electrolysis on La1−xSrxCoO3−δ perovskite electrocatalysts , 2016, Nature Communications.
[218] Stephanie L. Brock,et al. Efficient Water Oxidation Using CoMnP Nanoparticles. , 2016, Journal of the American Chemical Society.
[219] Jun Song Chen,et al. Stainless Steel Mesh-Supported NiS Nanosheet Array as Highly Efficient Catalyst for Oxygen Evolution Reaction. , 2016, ACS applied materials & interfaces.
[220] Xinwei Wang,et al. Vapor-Phase Atomic Layer Deposition of Nickel Sulfide and Its Application for Efficient Oxygen-Evolution Electrocatalysis , 2016 .
[221] Jiwhan Kim,et al. Single-Atom Catalyst of Platinum Supported on Titanium Nitride for Selective Electrochemical Reactions. , 2016, Angewandte Chemie.
[222] H. Xin,et al. Hollow‐Structured Carbon‐Supported Nickel Cobaltite Nanoparticles as an Efficient Bifunctional Electrocatalyst for the Oxygen Reduction and Evolution Reactions , 2016 .
[223] T. Kondo,et al. Active sites of nitrogen-doped carbon materials for oxygen reduction reaction clarified using model catalysts , 2016, Science.
[224] Ruizhi Yang,et al. FeCo2O4/hollow graphene spheres hybrid with enhanced electrocatalytic activities for oxygen reduction and oxygen evolution reaction , 2015 .
[225] 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.
[226] K. Hashimoto,et al. Copper-modified covalent triazine frameworks as non-noble-metal electrocatalysts for oxygen reduction. , 2015, Angewandte Chemie.
[227] Tatsuya Shinagawa,et al. Insight on Tafel slopes from a microkinetic analysis of aqueous electrocatalysis for energy conversion , 2015, Scientific Reports.
[228] Min Gyu Kim,et al. Metal (Ni, Co)‐Metal Oxides/Graphene Nanocomposites as Multifunctional Electrocatalysts , 2015 .
[229] Shuangyin Wang,et al. Hierarchically Porous Ni3S2 Nanorod Array Foam as Highly Efficient Electrocatalyst for Hydrogen Evolution Reaction and Oxygen Evolution Reaction , 2015 .
[230] Xiaobo He,et al. A Co/metal–organic-framework bifunctional electrocatalyst: The effect of the surface cobalt oxidation state on oxygen evolution/reduction reactions in an alkaline electrolyte , 2015 .
[231] S. M. Durón-Torres,et al. Electrochemical performance of a Sb-doped SnO2 support synthesized by coprecipitation for oxygen reactions , 2015, Journal of Applied Electrochemistry.
[232] Yang Tian,et al. Trinary Layered Double Hydroxides as High‐Performance Bifunctional Materials for Oxygen Electrocatalysis , 2015 .
[233] Y. Surendranath,et al. Heazlewoodite, Ni3S2: A Potent Catalyst for Oxygen Reduction to Water under Benign Conditions. , 2015, Journal of the American Chemical Society.
[234] Guojun Du,et al. Development of Cobalt Hydroxide as a Bifunctional Catalyst for Oxygen Electrocatalysis in Alkaline Solution. , 2015, ACS applied materials & interfaces.
[235] 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 .
[236] Zongxian Yang,et al. The mechanisms of oxygen reduction reaction on phosphorus doped graphene: A first-principles study , 2015 .
[237] K. Hashimoto,et al. Efficient Bifunctional Fe/C/N Electrocatalysts for Oxygen Reduction and Evolution Reaction , 2015 .
[238] Jianbo Jia,et al. Dual-doped carbon composite for efficient oxygen reduction via electrospinning and incipient impregnation , 2015 .
[239] Chunhuan Jiang,et al. Covalent entrapment of cobalt-iron sulfides in N-doped mesoporous carbon: extraordinary bifunctional electrocatalysts for oxygen reduction and evolution reactions. , 2015, ACS applied materials & interfaces.
[240] P. Murugan,et al. Development of shape-engineered α-MnO2 materials as bi-functional catalysts for oxygen evolution reaction and oxygen reduction reaction in alkaline medium , 2014 .
[241] D. Schmeißer,et al. Unification of catalytic water oxidation and oxygen reduction reactions: amorphous beat crystalline cobalt iron oxides. , 2014, Journal of the American Chemical Society.
[242] Mietek Jaroniec,et al. Metal-organic framework derived hybrid Co3O4-carbon porous nanowire arrays as reversible oxygen evolution electrodes. , 2014, Journal of the American Chemical Society.
[243] Hui Huang,et al. Structure-property relationship of bifunctional MnO2 nanostructures: highly efficient, ultra-stable electrochemical water oxidation and oxygen reduction reaction catalysts identified in alkaline media. , 2014, Journal of the American Chemical Society.
[244] 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.
[245] Guangyuan Zheng,et al. Electrochemical tuning of layered lithium transition metal oxides for improvement of oxygen evolution reaction , 2014, Nature Communications.
[246] William G. Hardin,et al. Tuning the Electrocatalytic Activity of Perovskites through Active Site Variation and Support Interactions , 2014 .
[247] Ja-Yeon Choi,et al. Morphologically controlled Co3O4 nanodisks as practical bi-functional catalyst for rechargeable zinc–air battery applications , 2014 .
[248] S. Hwang,et al. Solid-state chemistry-enabled scalable production of octahedral Pt-Ni alloy electrocatalyst for oxygen reduction reaction. , 2014, Journal of the American Chemical Society.
[249] Yushan Yan,et al. Efficient water oxidation using nanostructured α-nickel-hydroxide as an electrocatalyst. , 2014, Journal of the American Chemical Society.
[250] Ruizhi Yang,et al. A CoFe2O4/graphene nanohybrid as an efficient bi-functional electrocatalyst for oxygen reduction and oxygen evolution , 2014 .
[251] 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.
[252] Shuai Wang,et al. Design hierarchical electrodes with highly conductive NiCo2S4 nanotube arrays grown on carbon fiber paper for high-performance pseudocapacitors. , 2014, Nano letters.
[253] J. Carpena-Núñez,et al. Single-crystal γ-MnS nanowires conformally coated with carbon. , 2014, ACS applied materials & interfaces.
[254] Bin Zhang,et al. One-step synthesis of Mn3O4/reduced graphene oxide nanocomposites for oxygen reduction in nonaqueous Li-O2 batteries. , 2013, Chemical communications.
[255] Jianjun Jiang,et al. Highly conductive NiCo₂S₄ urchin-like nanostructures for high-rate pseudocapacitors. , 2013, Nanoscale.
[256] Qiao Liu,et al. NiCo2S4@graphene as a bifunctional electrocatalyst for oxygen reduction and evolution reactions. , 2013, ACS applied materials & interfaces.
[257] D. Lozano‐Castelló,et al. High-Loading Cobalt Oxide Coupled with Nitrogen-Doped Graphene for Oxygen Reduction in Anion-Exchange-Membrane Alkaline Fuel Cells , 2013 .
[258] Sheng Dai,et al. Highly Active, Nonprecious Metal Perovskite Electrocatalysts for Bifunctional Metal-Air Battery Electrodes. , 2013, The journal of physical chemistry letters.
[259] Meilin Liu,et al. Recent Progress in Non‐Precious Catalysts for Metal‐Air Batteries , 2012 .
[260] R. Hong,et al. Preparation of ATO nanorods and electrical resistivity analysis , 2012 .
[261] B. Hou,et al. Catalytic activity of graphene-cobalt hydroxide composite for oxygen reduction reaction in alkaline media , 2012 .
[262] J. Goodenough,et al. A Perovskite Oxide Optimized for Oxygen Evolution Catalysis from Molecular Orbital Principles , 2011, Science.
[263] Gang Wu,et al. Graphene-Riched Co9S8-N-C Non-Precious Metal Catalyst for Oxygen Reduction in Alkaline Media , 2011 .
[264] Yan-Jie Wang,et al. Noncarbon support materials for polymer electrolyte membrane fuel cell electrocatalysts. , 2011, Chemical reviews.
[265] Marc T. M. Koper,et al. Thermodynamic theory of multi-electron transfer reactions: Implications for electrocatalysis , 2011 .
[266] F. Vizza,et al. Cobalt monolayer islands on Ag(111) for ORR catalysis. , 2011, ChemSusChem.
[267] S. Mukerjee,et al. Influence of Inner- and Outer-Sphere Electron Transfer Mechanisms during Electrocatalysis of Oxygen Reduction in Alkaline Media , 2011 .
[268] H. Dai,et al. Co₃O₄ nanocrystals on graphene as a synergistic catalyst for oxygen reduction reaction. , 2011, Nature materials.
[269] John Kitchin,et al. Universality in Oxygen Evolution Electrocatalysis on Oxide Surfaces , 2011 .
[270] J. Goodenough,et al. Design principles for oxygen-reduction activity on perovskite oxide catalysts for fuel cells and metal-air batteries. , 2011, Nature chemistry.
[271] B. Liu,et al. Oxygen reduction reaction via the 4-electron transfer pathway on transition metal hydroxides , 2011 .
[272] Shuhong Yu,et al. Controllable synthesis of zinc-substituted alpha- and beta-nickel hydroxide nanostructures and their collective intrinsic properties. , 2008, Chemistry.
[273] Edmar P. Marques,et al. A review of Fe-N/C and Co-N/C catalysts for the oxygen reduction reaction , 2008 .
[274] Andrzej Wieckowski,et al. Electrocatalysis of oxygen reduction and small alcohol oxidation in alkaline media. , 2007, Physical chemistry chemical physics : PCCP.
[275] Jan Kern,et al. Towards complete cofactor arrangement in the 3.0 Å resolution structure of photosystem II , 2005, Nature.
[276] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode. , 2004, The journal of physical chemistry. B.
[277] Petra Fromme,et al. Crystal structure of photosystem II from Synechococcus elongatus at 3.8 Å resolution , 2001, Nature.
[278] H. Tributsch,et al. Influence of d-state density and chemistry of transition metal cluster selenides on electrocatalysis , 1988 .
[279] Xingjun Liu,et al. Enhanced bifunctional catalytic activities of N-doped graphene by Ni in a 3D trimodal nanoporous nanotubular network and its ultralong cycling performance in Zn-air batteries , 2022, Journal of Energy Chemistry.
[280] Jinli Qiao,et al. In-situ growth of CoNi bimetal anchored on carbon nanoparticle/nanotube hybrid for boosting rechargeable Zn-air battery , 2022 .
[281] F. Pan,et al. One-pot synthesis of FeNxC as efficient catalyst for high-performance zinc-air battery , 2022 .
[282] W. Chu,et al. Controllable Surface Reorganization Engineering on Cobalt Phosphide Nanowire Arrays for Efficient Alkaline Hydrogen Evolution Reaction , 2018, Advanced materials.
[283] Li Shi,et al. Single‐Atom Catalysts: Emerging Multifunctional Materials in Heterogeneous Catalysis , 2018 .
[284] Zhiyuan Zhang,et al. In Situ Exfoliated, N‐Doped, and Edge‐Rich Ultrathin Layered Double Hydroxides Nanosheets for Oxygen Evolution Reaction , 2018 .
[285] Hyunjoo J. Lee,et al. Highly Durable Platinum Single‐Atom Alloy Catalyst for Electrochemical Reactions , 2018 .
[286] Bo Z. Xu,et al. Bimetallic Cobalt‐Based Phosphide Zeolitic Imidazolate Framework: CoPx Phase‐Dependent Electrical Conductivity and Hydrogen Atom Adsorption Energy for Efficient Overall Water Splitting , 2017 .
[287] In‐Yup Jeon,et al. Controlled Fabrication of Hierarchically Structured Nitrogen‐Doped Carbon Nanotubes as a Highly Active Bifunctional Oxygen Electrocatalyst , 2017 .
[288] P. Strasser,et al. Cobalt-manganese-based spinels as multifunctional materials that unify catalytic water oxidation and oxygen reduction reactions. , 2015, ChemSusChem.
[289] Sun Tai Kim,et al. Metal–Air Batteries with High Energy Density: Li–Air versus Zn–Air , 2010 .
[290] M. Döbeli,et al. Perovskite thin films deposited by pulsed laser ablation as model systems for electrochemical applications , 2007 .