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Electrocatalytic Fixation of N2 into NO3-: Electron Transfer between Oxygen Vacancies and Loaded Au in Nb2O5-x Nanobelts to Promote Ambient Nitrogen Oxidation
Electrocatalytic Fixation of N2 into NO3-: Electron Transfer between Oxygen Vacancies and Loaded Au in Nb2O5-x Nanobelts to Promote Ambient Nitrogen Oxidation Yintong Zhang, Feng Du, Ruyi Wang, Xintong Ling, Xiaoyong Wang, Qing Shen, Yujie Xiong, Tao Li, Yong Zhou and Zhigang Zou Abstract The electrocatalytic nitrogen oxidation reaction (NOR) is a promising alternative to the industrial synthesis of nitrate.
Correction: Bimetallic oxyhydroxide in situ derived from an Fe2Co-MOF for efficient electrocatalytic oxygen evolution
* Corresponding authors a School of Physics, National Laboratory of Solid State Microstructures, Nanjing University, Nanjing, Jiangsu 210093, P. R. China E-mail: zhouyong1999@nju.edu.cn b Engineering Technology Research Centre of Henan Province for Solar Catalysis, School of Chemistry and Pharmaceutical Engineering, Nanyang Normal University, Nanyang, Henan 473061, P. R. China E-mail: ltao84@163.com c Jiangsu Key Laboratory for Nano Technology, Nanjing University, Nanjing, Jiangsu 210093, P. R.
Bimetallic oxyhydroxide in situ derived from Fe2Co-MOF for efficient electrocatalytic oxygen evolution
Bimetallic oxyhydroxide in situ derived from Fe2Co-MOF for efficient electrocatalytic oxygen evolution Metal-organic framework (MOF) has received extensive attention as a research hotspot in the field of electrocatalytic water splitting. However, the study of electrochemical in-situ formation of catalysts to improve the activity for OER is far from satisfaction. In this work, we prepared Fe2Co-MIL-88B MOF on nickel foam (Fe2Co MOF/NF) through a solvothermal process.
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