Zhu Yirong, Li Jingying, Yun Xiaoru, Zhao Ganggang, Ge Peng, Zou Guoqiang, Liu Yong, Hou Hongshuai, Ji Xiaobo
College of Metallurgy and Material Engineering, Hunan University of Technology, Zhuzhou, 412007, People's Republic of China.
College of Chemistry and Chemical Engineering, Central South University, Changsha, 410083, People's Republic of China.
Nanomicro Lett. 2020 Jan 4;12(1):16. doi: 10.1007/s40820-019-0355-0.
Carbon quantum dots (CQDs) as a new class of emerging materials have gradually drawn researchers' concern in recent years. In this work, the graphitic CQDs are prepared through a scalable approach, achieving a high yield with more than 50%. The obtained CQDs are further used as structure-directing and conductive agents to synthesize novel N,S-CQDs/NiCoS composite cathode materials, manifesting the enhanced electrochemical properties resulted from the synergistic effect of highly conductive N,S-codoped CQDs offering fast electronic transport and unique micro-/nanostructured NiCoS microspheres with Faradaic redox characteristic contributing large capacity. Moreover, the nitrogen-doped reduced graphene oxide (N-rGO)/FeO composite anode materials exhibit ultrahigh specific capacity as well as significantly improved rate property and cycle performance originating from the high-capacity prism-like FeO hexahedrons tightly wrapped by highly conductive N-rGO. A novel alkaline aqueous battery assembled by these materials displays a specific energy (50.2 Wh kg), ultrahigh specific power (9.7 kW kg) and excellent cycling performance with 91.5% of capacity retention at 3 A g for 5000 cycles. The present research offers a valuable guidance for the exploitation of advanced energy storage devices by the rational design and selection of battery/capacitive composite materials.
碳量子点(CQDs)作为一类新型的新兴材料,近年来逐渐引起了研究人员的关注。在这项工作中,通过一种可扩展的方法制备了石墨化的CQDs,产率高达50%以上。所制备的CQDs进一步用作结构导向剂和导电剂,以合成新型的N,S-CQDs/NiCoS复合阴极材料,这体现了由高导电性的N,S共掺杂CQDs提供快速电子传输以及具有法拉第氧化还原特性的独特微/纳米结构NiCoS微球贡献大容量所产生的协同效应导致的电化学性能增强。此外,氮掺杂还原氧化石墨烯(N-rGO)/FeO复合阳极材料表现出超高的比容量以及显著改善的倍率性能和循环性能,这源于由高导电性的N-rGO紧密包裹的高容量棱柱状FeO六面体。由这些材料组装而成的新型碱性水系电池展现出50.2 Wh kg的比能量、9.7 kW kg的超高比功率以及优异的循环性能,在3 A g下循环5000次后容量保持率为91.5%。本研究为通过合理设计和选择电池/电容复合材料来开发先进储能装置提供了有价值的指导。