A Composite of Carbon-Wrapped Mo2C Nanoparticle and Carbon Nanotube Formed Directly on Ni Foam as a High-Performance Binder-Free Cathode for Li-O2 Batteries

Cathode design is indispensable for building Li‐O2 batteries with long cycle life. A composite of carbon‐wrapped Mo2C nanoparticles and carbon nanotubes is prepared on Ni foam by direct hydrolysis and carbonization of a gel composed of ammonium heptamolybdate tetrahydrate and hydroquinone resin. The...

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Published inAdvanced functional materials Vol. 26; no. 46; pp. 8514 - 8520
Main Authors Zhu, Qian-Cheng, Xu, Shu-Mao, Harris, Michelle M., Ma, Chao, Liu, Yu-Si, Wei, Xiao, Xu, Hua-Sheng, Zhou, Yong-Xian, Cao, Yu-Cai, Wang, Kai-Xue, Chen, Jie-Sheng
Format Journal Article
LanguageEnglish
Published Blackwell Publishing Ltd 13.12.2016
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Summary:Cathode design is indispensable for building Li‐O2 batteries with long cycle life. A composite of carbon‐wrapped Mo2C nanoparticles and carbon nanotubes is prepared on Ni foam by direct hydrolysis and carbonization of a gel composed of ammonium heptamolybdate tetrahydrate and hydroquinone resin. The Mo2C nanoparticles with well‐controlled particle size act as a highly active oxygen reduction reactions/oxygen evolution reactions (ORR/OER) catalyst. The carbon coating can prevent the aggregation of the Mo2C nanoparticles. The even distribution of Mo2C nanoparticles results in the homogenous formation of discharge products. The skeleton of porous carbon with carbon nanotubes protrudes from the composite, resulting in extra voids when applied as a cathode for Li‐O2 batteries. The batteries deliver a high discharge capacity of ≈10 400 mAh g−1 and a low average charge voltage of ≈4.0 V at 200 mA g−1. With a cutoff capacity of 1000 mAh g−1, the Li‐O2 batteries exhibit excellent charge–discharge cycling stability for over 300 cycles. The average potential polarization of discharge/charge gaps is only ≈0.9 V, demonstrating the high ORR and OER activities of these Mo2C nanoparticles. The excellent cycling stability and low potential polarization provide new insights into the design of highly reversible and efficient cathode materials for Li‐O2 batteries. A composite of carbon‐wrapped Mo2C nanoparticles and carbon nanotubes is prepared on Ni foam via a simple carbonization method. The even distribution of Mo2C nanoparticles with well‐controlled size shows enhanced oxygen reduction reaction/oxygen evolution reaction activities. The binder‐free cathode for Li‐O2 batteries results in high rate capability and outstanding long term cycle ability.
Bibliography:ArticleID:ADFM201603462
istex:92B83F87A7117CC0050F015007557EF6D9FCEFE7
National Basic Research Program - No. 2014CB932102; No. 2013CB934102
Shanghai "Shuguang Program"
National Natural Science Foundation of China - No. 21271128; No. 21331004; No. 51472158
ark:/67375/WNG-T12KR4VS-J
ISSN:1616-301X
1616-3028
DOI:10.1002/adfm.201603462