Tang Ze-Hua, Xie Jin-Feng, Bian Zheng-Xu, Zhang Jun-Hao, Liu Yuan-Jun, Guo Xing-Mei, Kong Qing-Hong, Yuan Ai-Hua
School of Environmental and Chemical Engineering, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu 212003, China.
School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, China.
J Nanosci Nanotechnol. 2020 Feb 1;20(2):949-956. doi: 10.1166/jnn.2020.16927.
To improve lithium storage performances of Si anode for lithium-ion batteries, Si nanoparticles encapsulated into porous N-doped carbon (Si@PNC) was devised and prepared by metal nitrate accelerated polymer blowing process. The Si@PNC composites have large specific surface area of 221.7 m² g and possess a great deal of mesopores and micropores, which are attributed to the carbonization of PVP and etching metallic nanoparticles. As anode for lithium ion battery, the initial discharge capacity of Si@PNC composites is high to 1626 mA h g, and the specific capacity still retains 1030 mA h g after 200 cycles at 200 mA g. Meanwhile, remarkably improved rate capability is achieved with an excellent reversible specific capacity of 375 mA h g at 5.0 A g. The excellent lithium storage performances benefit from the unique porous core-shell structure of Si@PNC composites, which improve electroconductivity, reduce volume dilatation and accelerate lithium ion transmission.
为了提高锂离子电池硅负极的储锂性能,通过金属硝酸盐加速聚合物吹塑工艺设计并制备了封装在多孔氮掺杂碳中的硅纳米颗粒(Si@PNC)。Si@PNC复合材料具有221.7 m² g的大比表面积,并且拥有大量的中孔和微孔,这归因于PVP的碳化和金属纳米颗粒的蚀刻。作为锂离子电池的负极,Si@PNC复合材料的初始放电容量高达1626 mA h g,在200 mA g下循环200次后比容量仍保持1030 mA h g。同时,在5.0 A g下实现了显著提高的倍率性能,具有375 mA h g的优异可逆比容量。优异的储锂性能得益于Si@PNC复合材料独特的多孔核壳结构,该结构提高了电导率,减少了体积膨胀并加速了锂离子传输。