高原(数学)
学位(音乐)
钠
钾
碳纤维
化学工程
频道(广播)
化学
材料科学
冶金
复合材料
物理
电气工程
数学
工程类
数学分析
复合数
声学
作者
Niubu LeGe,Yinghao Zhang,Wei‐Hong Lai,Xiangxi He,Yunxiao Wang,Lingfei Zhao,Min Liu,Xingqiao Wu,Shulei Chou
摘要
Biomass holds significant potential for large-scale synthesis of hard carbon (HC), and HC is seen as the most promising anode material for sodium-ion batteries (SIBs). However, designing a HC anode with a rich pore structure, moderate graphitization and synthesis through a simple process using a cost-effective precursor to advance SIBs has long been a formidable challenge. This is primarily because high temperatures necessary for pore regulation invariably lead to excessive graphitization. Herein, innovative guidelines for designing such HC structures are reported by leveraging the inherent potassium in biomass to optimize the pore structure and alleviate graphitization through a novel carbothermal shock (CTS) method. During CTS, potassium-related compounds are effectively released and counteract the tendency of the carbon layers to graphitize by competing for thermal adsorption, thus forming pore channels while mitigating graphitization. The resulting HC anode exhibits an outstanding sodium storage capacity of 357.1 mA h g
科研通智能强力驱动
Strongly Powered by AbleSci AI