Enhanced oxygen reduction activity of α-MnO2 by NH3 plasma treatment

被引:0
作者
Li, Bing [1 ]
Liu, Xiang [1 ]
Liu, Yuling [1 ]
Xu, Tianjian [1 ]
He, Zhanglong [1 ]
Liu, Shan [1 ]
Xie, Jianan [1 ]
Chen, Yilong [1 ]
Ning, Xiaohui [1 ]
He, Hao [1 ]
机构
[1] Changsha Univ Sci & Technol, Coll Mat Sci & Engn, Changsha 410000, Peoples R China
关键词
plasma treatment; N doping; oxygen vacancy; Mg-air battery; CONTROLLABLE SYNTHESIS; GRAPHENE; ELECTROCATALYST; SITES; EDGE; MNO2; ORR;
D O I
10.1088/1361-6528/ad3b03
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Oxygen vacancies and heteroatom doping play important role in oxygen reduction activity of metal oxides. Developing efficient modification method is one of the key issues in catalysts research. Room temperature plasma treatment, with the advantages of mild working conditions, no emissions and high efficiency, is a new catalyst modification method developed in recent years. In this work, hydrothermal synthesized alpha-MnO2 nanorods are treated in NH3 plasma at room temperature. In the reducing atmosphere, oxygen vacancies and N doping are achieved simultaneously on the surface. The NH3 plasma etched MnO2 demonstrate a significant enhanced oxygen reduction activity with half-wave potential of 0.84 V, limiting current density of 6.32 mA cm(-2) and transferred electrons number of 3.9. The Mg-air battery with N-MnO2 display a maximum power density of 76.3 mW cm(-2) as well as stable discharge performance. This work provides new ideas for preparing efficient and cost-effective method to boost the catalysts activity.
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页数:7
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共 37 条
[1]   Pt-Decorated TiO2 Materials Supported on Carbon: Increasing Activities and Stabilities toward the ORR by Tuning the Pt Loading [J].
Barbosa, Eduardo C. M. ;
Parreira, Luanna S. ;
de Freitas, Isabel C. ;
Aveiro, Luci R. ;
de Oliveira, Daniela C. ;
dos Santos, Mauro C. ;
Camargo, Pedro H. C. .
ACS APPLIED ENERGY MATERIALS, 2019, 2 (08) :5759-5768
[2]   Plasma Technology: An Emerging Technology for Energy Storage [J].
Bogaerts, Annemie ;
Neyts, Erik C. .
ACS ENERGY LETTERS, 2018, 3 (04) :1013-1027
[3]   Enhancing Electrocatalytic Oxygen Reduction on MnO2 with Vacancies [J].
Cheng, Fangyi ;
Zhang, Tianran ;
Zhang, Yi ;
Du, Jing ;
Han, Xiaopeng ;
Chen, Jun .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2013, 52 (09) :2474-2477
[4]   Metal-air batteries: from oxygen reduction electrochemistry to cathode catalysts [J].
Cheng, Fangyi ;
Chen, Jun .
CHEMICAL SOCIETY REVIEWS, 2012, 41 (06) :2172-2192
[5]   Manipulation of defect density and nitrogen doping on few-layer graphene sheets using the plasma methodology for electrochemical applications [J].
Chi, Yu-Wen ;
Hu, Chi-Chang ;
Huang, Kun-Ping ;
Shen, Hsiao-Hsuan ;
Muniyandi, RajKumar .
ELECTROCHIMICA ACTA, 2016, 221 :144-153
[6]   Electrocatalyst approaches and challenges for automotive fuel cells [J].
Debe, Mark K. .
NATURE, 2012, 486 (7401) :43-51
[7]   Etched and doped Co9S8/graphene hybrid for oxygen electrocatalysis [J].
Dou, Shuo ;
Tao, Li ;
Huo, Jia ;
Wang, Shuangyin ;
Dai, Liming .
ENERGY & ENVIRONMENTAL SCIENCE, 2016, 9 (04) :1320-1326
[8]   Manganese oxide nanoparticles electrodeposited on platinum are superior to platinum for oxygen reduction [J].
El-Deab, Mohamed S. ;
Ohsaka, Takeo .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2006, 45 (36) :5963-5966
[9]   Tuning chemical bonding of MnO2 through transition-metal doping for enhanced CO oxidation [J].
Gao, Jiajian ;
Jia, Chunmiao ;
Zhang, Liping ;
Wang, Hongming ;
Yang, Yanhui ;
Hung, Sung-Fu ;
Hsu, Ying-Ya ;
Liu, Bin .
JOURNAL OF CATALYSIS, 2016, 341 :82-90
[10]   Evolving strategies for tumor immunotherapy: enhancing the enhancer and suppressing the suppressor [J].
Gu, Yan ;
Liu, Yanfang ;
Cao, Xuetao .
NATIONAL SCIENCE REVIEW, 2017, 4 (02) :161-163