Xu WANG , Bo-wang ZHAO , Jia-yu LIANG , Geng-zheng LIU , Ze-fei GUO , Hui-lian HAO , Wen-yao LI , Wen-zhong SHEN
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引用次数: 0
Abstract
To explore the effect of sulfur vacancies in transition metal sulfide on the electrochemical properties of anode materials, the graphene oxide (GO) and CoNi2S4 were used as the raw materials to synthesize the rGO10−CoNi2S4−x composite electrode materials by the solvothermal method. The obtained rGO10−CoNi2S4−x electrode materials with sulfur vacancies consist of nanoflakes and nanorods. The galvanostatic charge−discharge test of the rGO10−CoNi2S4−x electrode materials shows a great specific capacitance of 3050.1 F/g at a current density of 1 A/g. Moreover, the electrode materials still remain rate capability retention of 86.1% when the current density increases from 1 to at 10 A/g. The rGO10−CoNi2S4−x composite containing sulfur vacancies has higher specific capacitance and better rate capability in comparison to the pristine rGO−CoNi2S4 without containing sulfur defects. The optimized rGO10−CoNi2S4−x composite electrode materials with sulfur vacancies exhibit outstanding cycle stability and rate performance.
期刊介绍:
The Transactions of Nonferrous Metals Society of China (Trans. Nonferrous Met. Soc. China), founded in 1991 and sponsored by The Nonferrous Metals Society of China, is published monthly now and mainly contains reports of original research which reflect the new progresses in the field of nonferrous metals science and technology, including mineral processing, extraction metallurgy, metallic materials and heat treatments, metal working, physical metallurgy, powder metallurgy, with the emphasis on fundamental science. It is the unique preeminent publication in English for scientists, engineers, under/post-graduates on the field of nonferrous metals industry. This journal is covered by many famous abstract/index systems and databases such as SCI Expanded, Ei Compendex Plus, INSPEC, CA, METADEX, AJ and JICST.