Non-Graphitic Carbon with Enhanced Plateau Capacity and Reduced Slope Capacity for Sodium Storage Prepared with the Assistance of Phosphoric Acid
Zhaohua Zhang, Yanbin He, Yuhao Liu, Jiahao Xu, Xiaoxiao Qu, Jia Yu, Guangxu Huang, Baolin Xing, Chuanxiang ZhangAbstract
The relatively low energy density of sodium-ion batteries can be effectively mitigated by boosting the low-voltage plateau capacity of anode materials. Herein, a non-graphitic carbon (NGC) is prepared from pre-carbonized semi-coke through H3PO4 treatment followed by carbonization at 1400 °C. The obtained NGC possesses an increased content of pseudo-graphitic structure and a decreased content of disordered structure thanks to the multiple effects of catalysis, activation, and heteroatom doping of H3PO4 on semi-coke, which reach a balance at an H3PO4/semi-coke mass ratio of 1 and a treatment temperature of 600 °C. By comparison, the resulting NGC (PHC-600) shows an increase of 11.6% in the content of pseudo-graphitic structure, as well as a decrease of 11.8% in the content of highly disordered structure. As expected, PHC-600 exhibits a remarkable reversible capacity of 302.2 mAh g–1 at 20 mA g–1, along with an outstanding ICE of 85.0%, which is notably better than that of its control sample (275.6 mAh g–1 and 81.1%). Notably, PHC-600 shows a significantly increased plateau capacity of 217.7 mAh g–1 in contrast to a diminished sloping capacity of 84.5 mAh g–1 for its counterpart, which exhibits 173.4 and 102.2 mAh g–1, respectively. These changes are attributed to a weakened “defect adsorption” effect and an enhanced “interlayer intercalation” effect.