Boosting the Oxygen Reduction Reaction in Zn–Air Batteries via a Uniform Trace N-Doped Carbon-Based Pore Structure
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Juanjuan Gao | Rumeng Liu | Shen Hu | Haiou Song | Shupeng Zhang | Yue Liu | Qi Yang
[1] K. Xiao,et al. Multivalent CoSx coupled with N-doped CNTs/Ni as an advanced oxygen electrocatalyst for zinc-air batteries , 2022 .
[2] Q. Yuan,et al. MOF Structure Engineering to Synthesize CoNC Catalyst with Richer Accessible Active Sites for Enhanced Oxygen Reduction. , 2021, Small.
[3] Tongchao Liu,et al. Wood Carbon Based Single-Atom Catalyst for Rechargeable Zn–Air Batteries , 2021, ACS Energy Letters.
[4] Geoffrey I N Waterhouse,et al. Epitaxially Growth of Heterostructured SrMn3O6-x-SrMnO3 with High Valence Mn3+/4+ for I mproved Oxygen Reduction Catalysis. , 2021, Angewandte Chemie.
[5] Guanggang Gao,et al. Polyoxometalate@ZIF Induced CoWO4/WS2@C-N Nanoflower as a Highly Efficient Catalyst for Zn–Air Batteries , 2021, ACS Applied Energy Materials.
[6] Chang Liu,et al. Dual‐Phasic Carbon with Co Single Atoms and Nanoparticles as a Bifunctional Oxygen Electrocatalyst for Rechargeable Zn–Air Batteries , 2021, Advanced Functional Materials.
[7] Lifang Jiao,et al. P-block atomically dispersed antimony catalyst for highly efficient oxygen reduction reaction. , 2021, Angewandte Chemie.
[8] P. Shen,et al. N, S Codoped Carbon Matrix‐Encapsulated Co9S8 Nanoparticles as a Highly Efficient and Durable Bifunctional Oxygen Redox Electrocatalyst for Rechargeable Zn–Air Batteries , 2021, Advanced Energy Materials.
[9] Zongping Shao,et al. Advances in Zeolite Imidazolate Frameworks (ZIFs) Derived Bifunctional Oxygen Electrocatalysts and Their Application in Zinc–Air Batteries , 2021, Advanced Energy Materials.
[10] Xianying Wang,et al. Recent Advances on MOF Derivatives for Non-Noble Metal Oxygen Electrocatalysts in Zinc-Air Batteries , 2021, Nano-Micro Letters.
[11] Hui Pan,et al. Engineering Pt and Fe dual-metal single atoms anchored on nitrogen-doped carbon with high activity and durability towards oxygen reduction reaction for zinc-air battery , 2021 .
[12] R. Zou,et al. Carbon‐based nonprecious metal electrocatalysts derived from MOFs for oxygen‐reduction reaction , 2021, International Journal of Energy Research.
[13] R. Cao,et al. Template-free synthesis of non-noble metal single-atom electrocatalyst with N-doped holey carbon matrix for highly efficient oxygen reduction reaction in zinc-air batteries , 2021 .
[14] Geoffrey I N Waterhouse,et al. MIL‐101‐Derived Mesoporous Carbon Supporting Highly Exposed Fe Single‐Atom Sites as Efficient Oxygen Reduction Reaction Catalysts , 2021, Advanced materials.
[15] Qiang Xu,et al. Hollow Spherical Superstructure of Carbon Nanosheets for Bifunctional Oxygen Reduction and Evolution Electrocatalysis. , 2021, Nano letters.
[16] Jong‐Ho Kim,et al. Bifunctional Covalent Organic Framework‐Derived Electrocatalysts with Modulated p‐Band Centers for Rechargeable Zn–Air Batteries , 2021, Advanced Functional Materials.
[17] B. Shan,et al. Molten-salt-assisted Thermal Emitting Method to Transform Bulk Fe2O3 into Fe Single Atom Catalysts for Oxygen Reduction Reaction in Zn-air battery , 2021 .
[18] H. Fu,et al. Operando Cooperated Catalytic Mechanism of Atomically Dispersed Cu-N4 and Zn-N4 for Promoting Oxygen Reduction Reaction. , 2021, Angewandte Chemie.
[19] Hanxue Sun,et al. N‐rich mesoporous carbon supported CoNC and FeNC catalysts derived from o‐phenylenediamine for oxygen reduction reaction , 2021, International Journal of Energy Research.
[20] D. Sun-Waterhouse,et al. Molten NaCl‐Assisted Synthesis of Porous Fe‐N‐C Electrocatalysts with a High Density of Catalytically Accessible FeN4 Active Sites and Outstanding Oxygen Reduction Reaction Performance , 2021, Advanced Energy Materials.
[21] Fan Zhou,et al. The cooperation of Fe3C nanoparticles with isolated single iron atoms to boost the oxygen reduction reaction for Zn–air batteries , 2021 .
[22] L. Du,et al. A dual-template strategy to engineer hierarchically porous Fe–N–C electrocatalysts for the high-performance cathodes of Zn–air batteries , 2021, Journal of Materials Chemistry A.
[23] Liuyong Zou,et al. Porous Carbon Nanosheets Derived from ZIF‐8 Treated with KCl as Highly Efficient Electrocatalysts for the Oxygen Reduction Reaction , 2021 .
[24] Qichun Zhang,et al. Recent advances in vacancy engineering of metal‐organic frameworks and their derivatives for electrocatalysis , 2021, SusMat.
[25] Yuxiang Chen,et al. Interfacing spinel NiCo2O4 and NiCo alloy derived N-doped carbon nanotubes for enhanced oxygen electrocatalysis , 2021 .
[26] Hui Zhao,et al. Design Strategies of Non-Noble Metal-Based Electrocatalysts for 2-Electron Oxygen Reduction to Hydrogen Peroxide. , 2021, ChemSusChem.
[27] Xiaobing Hu,et al. 3D Ordered Co@NC Skeleton for Bifunctional Oxygen Reduction and Oxygen Evolution Reaction Electrocatalysts , 2021, Advanced Materials Interfaces.
[28] Haoquan Zheng,et al. Metal-Organic Framework-Supported Molecular Electrocatalysis for the Oxygen Reduction Reaction. , 2021, Angewandte Chemie.
[29] R. Jinnouchi,et al. Challenges in applying highly active Pt-based nanostructured catalysts for oxygen reduction reactions to fuel cell vehicles , 2021, Nature Nanotechnology.
[30] Hui Yang,et al. Boosting the oxygen reduction performance of MOF-5-derived Fe-N-C electrocatalysts via a dual strategy of cation-exchange and guest-encapsulation , 2021, Electrochimica Acta.
[31] Jie Zeng,et al. Pd-Pt Tesseracts for the Oxygen Reduction Reaction. , 2021, Journal of the American Chemical Society.
[32] Lei Liu,et al. Graphitic-N-rich N-doped graphene as a high performance catalyst for oxygen reduction reaction in alkaline solution , 2020 .
[33] L. Mai,et al. Heterostructure Design in Bimetallic Phthalocyanine Boosts Oxygen Reduction Reaction Activity and Durability , 2020, Advanced Functional Materials.
[34] S. Pennycook,et al. Trimetal atoms confined in openly accessible nitrogen-doped carbon constructs for an efficient ORR , 2020 .
[35] A. Parkash. Incorporation of Pt–Cr nanoparticles into highly porous MOF-5 as efficient oxygen reduction electrocatalysts , 2020, Nanotechnology.
[36] Zhixing Wang,et al. Robust template-activator cooperated pyrolysis enabling hierarchically porous honeycombed defective carbon as highly-efficient metal-free bifunctional electrocatalyst for Zn-air batteries , 2020 .
[37] Pinshane Y. Huang,et al. Preparation of Non-precious Metal Electrocatalysts for the Reduction of Oxygen Using a Low-Temperature Sacrificial Metal. , 2020, Journal of the American Chemical Society.
[38] X. Duan,et al. Molecular Design of Single‐Atom Catalysts for Oxygen Reduction Reaction , 2020, Advanced Energy Materials.
[39] Zhao‐Qing Liu,et al. Surface Reorganization on Electrochemically-Induced Zn-Ni-Co Spinel Oxides for Enhanced Oxygen Electrocatalysis. , 2020, Angewandte Chemie.
[40] K. Sun,et al. Segmentation and Re-encapsulation of Porous PtCu Nanoparticles by Generated Carbon Shell for Enhanced Ethylene-glycol Oxidation and Oxygen-reduction Reaction. , 2020, ACS applied materials & interfaces.
[41] Zhonglong Zhao,et al. PdMo bimetallene for oxygen reduction catalysis , 2019, Nature.
[42] Tianyi Ma,et al. Redox-Inert Fe3+ in Octahedral Sites of Co-Fe Spinel Oxides with Enhanced Oxygen Catalytic Activity for Rechargeable Zn-Air Batteries. , 2019, Angewandte Chemie.
[43] Q. Liao,et al. NaCl protected synthesis of 3D hierarchical metal-free porous nitrogen-doped carbon catalysts for the oxygen reduction reaction in acidic electrolyte. , 2019, Chemical communications.
[44] X. Lou,et al. Ultrafine Dual‐Phased Carbide Nanocrystals Confined in Porous Nitrogen‐Doped Carbon Dodecahedrons for Efficient Hydrogen Evolution Reaction , 2019, Advanced materials.
[45] Haiyan Wang,et al. Boosting oxygen reduction activity of Fe-N-C by partial copper substitution to iron in Al-air batteries , 2019, Applied Catalysis B: Environmental.
[46] 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.
[47] Yu Ding,et al. Interfacial proton enrichment enhances proton-coupled electrocatalytic reactions , 2018 .
[48] H. Xin,et al. From a ZIF-8 polyhedron to three-dimensional nitrogen doped hierarchical porous carbon: an efficient electrocatalyst for the oxygen reduction reaction , 2018 .
[49] Weiguo Song,et al. Biomass chitosan derived cobalt/nitrogen doped carbon nanotubes for the electrocatalytic oxygen reduction reaction , 2018 .
[50] Dan Zhao,et al. Web-Like Interconnected Carbon Networks from NaCl-Assisted Pyrolysis of ZIF-8 for Highly Efficient Oxygen Reduction Catalysis. , 2018, Small.
[51] Y. Tong,et al. A Facile Activation Strategy for an MOF-Derived Metal-Free Oxygen Reduction Reaction Catalyst: Direct Access to Optimized Pore Structure and Nitrogen Species , 2017 .
[52] Min Wei,et al. Directed synthesis of carbon nanotube arrays based on layered double hydroxides toward highly-efficient bifunctional oxygen electrocatalysis , 2017 .
[53] Jie Wang,et al. Nitrogen‐Doped Hierarchical Porous Carbons Derived from Sodium Alginate as Efficient Oxygen Reduction Reaction Electrocatalysts , 2017 .
[54] Jianguo Liu,et al. Highly Functional Bioinspired Fe/N/C Oxygen Reduction Reaction Catalysts: Structure-Regulating Oxygen Sorption. , 2016, ACS applied materials & interfaces.
[55] Shaojun Guo,et al. Earth-Abundant Nanomaterials for Oxygen Reduction. , 2016, Angewandte Chemie.
[56] Changguo Chen,et al. Easy conversion of protein-rich enoki mushroom biomass to a nitrogen-doped carbon nanomaterial as a promising metal-free catalyst for oxygen reduction reaction. , 2015, Nanoscale.
[57] E. Vijayakumar,et al. MOF-derived CoP-nitrogen-doped carbon@NiFeP nanoflakes as an efficient and durable electrocatalyst with multiple catalytically active sites for OER, HER, ORR and rechargeable zinc-air batteries , 2022 .