碳化
化学工程
堆积
碳纤维
法拉第效率
阳极
微观结构
材料科学
化学
钠
催化作用
比表面积
纳米技术
金属有机骨架
容量损失
无机化学
过程(计算)
钠离子电池
纳米颗粒
原位
氧化还原
储能
吸附
氧化法
水热碳化
作者
Rui Fang,Zhicui Song,Ning Dang,Tianbao Zhao
出处
期刊:Langmuir
[American Chemical Society]
日期:2026-06-22
卷期号:42 (26): 19096-19107
标识
DOI:10.1021/acs.langmuir.6c02056
摘要
As a low-cost precursor for hard carbon (HC) anodes in sodium-ion batteries, oxidized asphalt (OP) suffers from excessive carbon-layer ordering and insufficient development of closed-pore structure during pyrolysis, which limits low-voltage sodium storage and initial Coulombic efficiency. Herein, a synergistic strategy combining HNO 3 oxidation with ZnCl 2 activation is developed to regulate the microstructure of oxidized asphalt-derived HC. The oxygen-containing functional groups introduced by oxidation promote the anchoring of Zn species and facilitate the in situ generation of ZnO intermediates during pyrolysis, thereby reconfiguring the activation process and carbonization behavior. As a result, the ordered stacking of carbon layers is effectively suppressed, leading to an enlarged interlayer spacing of 0.391 nm and a closed-pore-rich structure. The obtained N–Zn–OP exhibits a defect-rich turbostratic framework with a specific surface area of 359.67 m 2 g –1 . Benefiting from the cooperative optimization of carbon layers and pore structure, the N–Zn–OP anode delivers a reversible capacity of 403.52 mAh g –1 at 15 mA g –1, with 51.13% of the capacity contributed by the low-voltage plateau, and retains 90% of its capacity after 100 cycles at 0.1C.
科研通智能强力驱动
Strongly Powered by AbleSci AI