Jiangmin JiangQianqian ShenZiyu ChenShijing Wang
Lithium-ion capacitors (LICs) are emerging as one of the most advanced hybrid energy storage devices, however, their development is limited by the imbalance of the dynamics and capacity between the anode and cathode electrodes. Herein, anthracite was proposed as the raw material to prepare coal-based, nitrogen-doped porous carbon materials (CNPCs), together with being employed as a cathode and anode used for dual-carbon lithium-ion capacitors (DC-LICs). The prepared CNPCs exhibited a folded carbon nanosheet structure and the pores could be well regulated by changing the additional amount of g-C3N4, showing a high conductivity, abundant heteroatoms, and a large specific surface area. As expected, the optimized CNPCs (CTK-1.0) delivered a superior lithium storage capacity, which exhibited a high specific capacity of 750 mAh g−1 and maintained an excellent capacity retention rate of 97% after 800 cycles. Furthermore, DC-LICs (CTK-1.0//CTK-1.0) were assembled using the CTK-1.0 as both cathode and anode electrodes to match well in terms of internal kinetics and capacity simultaneously, which displayed a maximum energy density of 137.6 Wh kg−1 and a protracted lifetime of 3000 cycles. This work demonstrates the great potential of coal-based carbon materials for electrochemical energy storage devices and also provides a new way for the high value-added utilization of coal materials.
Huilong JingMiaoxin ChenXiaoyu ZhangYaxiong YangXiaohua ZhengChen-chen LiYuepeng PangShengnan HeMingxia GaoChu LiangHongge Pan
Liang Han (339956)Shouguo Kang (11530415)Xiao Zhu (257280)Jinlai Li (4347313)Qi Wang (22418)Xilai Jia (1747336)
Liang HanShouguo KangXiao ZhuJinlai LiQi WangXilai Jia
Leiming CaiYanzhe ZhangRui MaXia FengLihua YanDianzeng JiaMengjiao XuLili AiNannan GuoLuxiang Wang
Xutao ZhangZhongyu ZhangFang HuDi LiDing ZhouPengtao JingFei DuSongnan Qu