Lu Zhitao, Liu Ruliang, Huang Junlong, Chen Zirun, Chen Luyi, Wu Dingcai, Fu Ruowen
Materials Science Institute, PCFM Lab and GDHPPC Lab, School of Chemistry, Sun Yat-sen University Guangzhou 510275 P. R. China
RSC Adv. 2019 Mar 19;9(16):9086-9092. doi: 10.1039/c9ra00139e. eCollection 2019 Mar 15.
Nonstoichiometric silicon oxide (SiO ) with high theoretical capacity is a promising anode material for lithium-ion batteries (LIBs). However, volume changes and poor electronic conductivity of SiO are major impediments to its practical application. The modification of SiO with carbonaceous materials to accommodate volume variations and improve conductivity is a valuable strategy. Nanonetwork-structured (NNS) carbons have been paid great attention because of their unique three-dimensional structure, and high electronic and ionic conductivity. Incorporating SiO with well-designed NNS carbons is a promising method to prepare high quality electrode materials for lithium-ion batteries. In this work, a fabrication approach is developed to synthesize a 3D carbon network composed of carbonaceous hybrid nanotubes with well-dispersed SiO nanodomains (CNT@SiO -C) from 1D gelable bottlebrushes as network building blocks based on molecular-scale interface engineering technology. Herein, nano-sized SiO particles are embedded into the carbonaceous matrix to prevent their volume change during cycling. The experimental results indicated that the CNT@SiO -C presents high reversible capacity, remarkable cycle life and high rate capability due to the high dispersion of nano-sized SiO and conductive 3D carbon nanonetwork.
具有高理论容量的非化学计量比氧化硅(SiO )是一种很有前景的锂离子电池(LIBs)负极材料。然而,SiO 的体积变化和较差的电子导电性是其实际应用的主要障碍。用含碳材料对SiO 进行改性以适应体积变化并提高导电性是一种有价值的策略。纳米网络结构(NNS)碳因其独特的三维结构以及高电子和离子导电性而备受关注。将SiO 与精心设计的NNS碳相结合是制备高质量锂离子电池电极材料的一种有前景的方法。在这项工作中,基于分子尺度界面工程技术,开发了一种制备方法,以一维可凝胶化刷状分子作为网络构建块,合成由具有均匀分散的SiO 纳米域的碳质混合纳米管组成的三维碳网络(CNT@SiO -C)。在此,纳米尺寸的SiO 颗粒嵌入碳质基体中,以防止其在循环过程中发生体积变化。实验结果表明,由于纳米尺寸的SiO 的高度分散和导电的三维碳纳米网络,CNT@SiO -C呈现出高可逆容量、出色的循环寿命和高倍率性能。