Zhang Xiao-Hua, Jiang Ru, Fan Chao-Ying, Xie Dan, Li Bao, Zhang Jing-Ping, Wu Xing-Long
MOE Key Laboratory for UV Light-Emitting Materials and Technology, Northeast Normal University, Changchun, Jilin, 130024, P. R. China.
Faculty of Chemistry, Northeast Normal University, Changchun, Jilin, 130024, P. R. China.
Small. 2021 Apr;17(14):e2006566. doi: 10.1002/smll.202006566. Epub 2021 Mar 18.
All-purpose electrode materials (APEMs), which can be effectively available on not only alkali-ion batteries but also emerging Li metal batteries, are urgently pursued to open up cost-efficient tactics for practical application of energy storage systems (ESSs), but still remain challenging. Herein, the hierarchical porous carbon nanotubes network (NOPCT) with well-tailored nanoarchitecture and high N/O-co-doping content (20.6 at%) is developed to present large-span application on ESSs. As for Li/Na-ion batteries, the NOPCT delivered excellent cycle stability and robust rate performance in a conventional ester-based electrolyte. Moreover, NOPCT also serving as a metal Li host can effectively guide smooth and uniform Li nucleation/growth to enhance the cycle stability of hybrid Li metal anodes. In addition, the NOPCT played an important role in the sustainability of sulfur electrodes, promising the feasibility of shared NOPCT for practical Li-S batteries. First-principle calculations demonstrate that graphitic-N and CO function groups favor for improving electron conductivity while the pyridinic-N and CO function group make sense for improved Li/Na adsorption and affinity through Lewis acid-base interaction, enlightening the interplay between various doped categories on improved electrochemical performance of NOPCT. This work provides profound theoretical and experimental insight into the design and development of APEMs for advanced ESSs.
通用电极材料(APEMs)不仅可有效地应用于碱离子电池,还可应用于新兴的锂金属电池,人们迫切需要开发这种材料,以开辟储能系统(ESSs)实际应用的经济高效策略,但这仍然具有挑战性。在此,我们开发了具有精心设计的纳米结构和高氮/氧共掺杂含量(20.6 at%)的分级多孔碳纳米管网络(NOPCT),以实现其在ESSs中的广泛应用。对于锂/钠离子电池,NOPCT在传统的酯基电解质中表现出优异的循环稳定性和强大的倍率性能。此外,NOPCT作为金属锂宿主,还可以有效地引导锂的平滑均匀成核/生长,从而提高混合锂金属负极的循环稳定性。此外,NOPCT在硫电极的可持续性方面发挥了重要作用,这表明NOPCT用于实际锂硫电池具有可行性。第一性原理计算表明,石墨氮和CO官能团有利于提高电子导电性,而吡啶氮和CO官能团通过路易斯酸碱相互作用对改善锂/钠吸附和亲和力有意义,这揭示了不同掺杂类别之间的相互作用对NOPCT电化学性能的改善。这项工作为先进ESSs的APEMs设计和开发提供了深刻的理论和实验见解。