Interfacial engineering Co and MnO within N,S co-doped carbon hierarchical branched superstructures toward high-efficiency electrocatalytic oxygen reduction for robust Zn-air batteries
Autor: | Shaoyi Hou, Huan Pang, Kai Huang, Jun Yang, Yuxuan Cheng, Wenyang Shen, Lin Xu, Run Tian, Yawen Tang, Qixing Zhou, Ruoxu Sun |
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Rok vydání: | 2021 |
Předmět: |
Materials science
Aqueous solution Process Chemistry and Technology chemistry.chemical_element 02 engineering and technology Carbon nanotube Electrolyte 010402 general chemistry 021001 nanoscience & nanotechnology Electrocatalyst 01 natural sciences Oxygen Catalysis 0104 chemical sciences law.invention chemistry.chemical_compound chemistry Chemical engineering law Electrical resistivity and conductivity Methanol 0210 nano-technology Carbon General Environmental Science |
Zdroj: | Applied Catalysis B: Environmental. 295:120281 |
ISSN: | 0926-3373 |
DOI: | 10.1016/j.apcatb.2021.120281 |
Popis: | Electronic regulation via interfacial formation is identified as a versatile strategy to improve the electrocatalytic activity. Herein, we report a feasible electrospinning-pyrolysis approach for the in-situ immobilization of Co/MnO hetero-nanoparticles onto N,S co-doped carbon nanotubes/nanofiber-integrated hierarchical branched superstructures (abbreviated as Co/MnO@N,S-C NT/CNFs hereafter). The simultaneous realization of interfacial engineering and nanocarbon hybridization renders the fabricated Co/MnO@N,S-C NT/CNFs with abundant firmly anchored active sites, modified electronic configuration, improved electric conductivity, efficient mass transport pathways, and significantly reinforced stability. Profiting from the compositional synergy and architectural advantages, the Co/MnO@N,S-C NT/CNFs exhibit outstanding ORR activity, superior tolerance to methanol, and excellent long-term stability in KOH electrolyte. More encouragingly, as a proof-of-concept demonstration, the rechargeable aqueous and flexible all-solid-state Zn-air batteries using Co/MnO@N,S-C NT/NFs + RuO2 as the air-cathode afford higher power densities, larger specific capacities and superb cycling stability, outperforming the state-of-the-art Pt/C + RuO2 counterparts. This work demonstrates the great contribution of heterointerfaces for oxygen electrocatalysis. |
Databáze: | OpenAIRE |
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