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Electrospun ZnO–SnO2 composite nanofibers with enhanced electrochemical performance as lithium-ion anodes
Affiliation:1. Key Laboratory of Eco-Textiles, Ministry of Education, Jiangnan University, Wuxi 214122, China;2. Fiber and Polymer Science Program, Department of Textile Engineering, Chemistry and Science, North Carolina State University, Raleigh, NC 27695-8301, USA;3. Key Laboratory of Textile Fabric, College of Textiles and Clothing, Anhui Polytechnic University, Wuhu 241000, China;1. Research and Technology Development Centre, Sharda University, Greater Noida, India;2. Department of Chemistry, Dr. HS Gour University, Sagar, MP, India;3. Department of Nanoscience & Technology, Federal Polytechnic, Oko, Nigeria;1. School of Chemistry and Environment, South China Normal University, Guangzhou 510006, China;2. Engineering Research Center of MTEES (Ministry of Education), Research Center of BMET (Guangdong Province), Engineering Laboratory of OFMHEB (Guangdong Province), Key Laboratory of ETESPG (GHEI), and Innovative Platform for ITBMD (Guangzhou Municipality), South China Normal University, Guangzhou 510006, China;1. Guangdong University of Technology, School of Information Engineering, Guangzhou 510006, Guangdong, People’s Republic of China;2. Guangdong University of Technology, School of Physics and Optoelectronic Engineering, Guangzhou 510006, Guangdong, People’s Republic of China
Abstract:ZnO–SnO2 composite nanofibers with different structures were synthesized by a simple electrospinning approach with subsequent calcination at three different temperatures using polyacrylonitrile as the polymer precursor. The electrochemical performance of the composites for use as anode materials in lithium-ion batteries were investigated. It was found that the ZnO–SnO2 composite nanofibers calcined at 700 °C showed excellent lithium storage properties in terms of cycling stability and rate capability, compared to those calcined at 800 and 900 °C, respectively. ZnO–SnO2 composite nanofibers calcined at 700 °C not only delivered high initial discharge and charge capacities of 1450 and 1101 mAh g?1, respectively, with a 75.9% coulombic efficiency, but also maintained a high reversible capacity of 560 mAh g?1 at a current density of 0.1 A g?1 after 100 cycles. Additionally, a high reversible capacity of 591 mAh g?1 was obtained when the current density returned to 0.1 A g?1 after 50 cycling at a high current density of 2 A g?1. The superior electrochemical performance of ZnO–SnO2 composite nanofibers can be attributed to the unique nanofibrous structure, the smaller particle size and smaller fiber diameter as well as the porous structure and synergistic effect between ZnO and SnO2.
Keywords:Electrospinning  ZnO  Composite nanofibers  Anode
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