Xu Chong, Yang Wang, Ma Guang, Che Sai, Li Yun, Jia Yan, Chen Ni, Huang Guoyong, Li Yongfeng
State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Changping, Beijing, 102249, China.
Small. 2022 Dec;18(48):e2204375. doi: 10.1002/smll.202204375. Epub 2022 Oct 21.
The application of nitrogen-doped porous carbon for sodium-ion batteries (SIBs) has attracted tremendous attention. Herein, a series of edge-nitrogen enriched porous carbon nanosheets (ENPCNs) are synthesized by annealing g-C N and glucose in a sealed graphite crucible at different temperatures (T = 700, 800, and 900 °C). Surprisingly, under the closed thermal treatment condition, the ENPCNs-T possess a high N-doping level (>12.62 at%) and different carbon interlayer distance ranging from 0.429 to 0.487 nm. By correlating the carbon interlayer distance with the N configurations of ENPCNs-T materials, a reasonable perception of the important influence of pyrrolic N on the increase of carbon interlayer distance is proposed. When applied as anode materials for SIBs, the ENPCNs-800 exhibits a remarkable capacity (294.1 mAh g at 0.1 A g ), excellent rate performance (132.8 mAh g at 10 A g ), and outstanding cycle life (180.6 mAh g at 1 A g after 1000 cycles with a capacity retention of 104.7%). Meanwhile, the characterizations of cyclic voltammetry, galvanostatic intermittent titration technique, and electrochemical impedance spectroscopy demonstrate that the edge-nitrogen doping and enlarged carbon interlayer distance improve the capacity and fast charging performance of ENPCNs-800. Considering the detailed investigation of the Na storage mechanism and excellent electrochemical performance of ENPCNs-800, this work can pave a new avenue for the research of SIBs.
氮掺杂多孔碳在钠离子电池(SIBs)中的应用引起了极大关注。在此,通过在密封石墨坩埚中于不同温度(T = 700、800和900°C)下对g-CN和葡萄糖进行退火处理,合成了一系列边缘富氮多孔碳纳米片(ENPCNs)。令人惊讶的是,在封闭热处理条件下,ENPCNs-T具有高氮掺杂水平(>12.62 at%)以及范围从0.429至0.487 nm的不同碳层间距。通过将碳层间距与ENPCNs-T材料的氮构型相关联,提出了对吡咯氮对碳层间距增加的重要影响的合理认识。当用作SIBs的负极材料时,ENPCNs-800表现出显著的容量(在0.1 A g时为294.1 mAh g)、优异的倍率性能(在10 A g时为132.8 mAh g)以及出色的循环寿命(在1 A g下1000次循环后为180.6 mAh g,容量保持率为104.7%)。同时,循环伏安法、恒电流间歇滴定技术和电化学阻抗谱的表征表明,边缘氮掺杂和扩大的碳层间距改善了ENPCNs-800的容量和快速充电性能。考虑到对ENPCNs-800钠存储机制的详细研究及其优异的电化学性能,这项工作可为SIBs的研究开辟一条新途径。