Synthesis and characterization of different MnO2 morphologies for lithium-air batteries

被引:0
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作者
Hyun-A Choi
Hyuk Jang
Hyein Hwang
Mincheol Choi
Dongwook Lim
Sang Eun Shim
Sung-Hyeon Baeck
机构
[1] Inha University,Department of Chemistry and Chemical Engineering
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lithium-air battery; air electrode; manganese oxide; mesoporous; gas diffusion layer;
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摘要
Manganese dioxide (MnO2) was synthesized in the forms of nanorods, nanoparticles, and mesoporous structures and the characteristics of these materials were investigated. Crystallinities were studied by x-ray diffraction and morphologies by scanning and transmission electron microscopy. Average pore sizes and specific surface areas were analyzed using the Barret-Joyner-Halenda and Brunauer-Emmett-Teller methods, respectively. Samples were also studied by cyclic voltammetry using 1M aqueous KOH solution saturated with either O2 or N2 as electrolytes to investigate their ORR (oxygen reduction reaction) and OER (oxygen evolution reaction) activities. Of the samples produced, mesoporous MnO2 exhibited the highest ORR and OER catalytic activities. Mesoporous MnO2 supported on a gas diffusion layer was also used as a catalyst on the air electrode (cathode) of a lithium-air battery in organic electrolyte. The charge-discharge behavior of mesoporous MnO2 was investigated at a current density 0.2 mAcm−2 in a pure oxygen environment. Mesoporous MnO2 electrodes showed stable cycleability up to 65 cycles at a cell capacity of 700 mAhg−1.
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页码:957 / 962
页数:5
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