Zheng Jiefeng, Wu Yuanji, Tong Yong, Liu Xi, Sun Yingjuan, Li Hongyan, Niu Li
Department of Materials Science and Engineering, College of Chemistry and Materials Science, Jinan University, Guangzhou, 510632, People's Republic of China.
Center for Advanced Analytical Science, School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou, 510006, People's Republic of China.
Nanomicro Lett. 2021 Aug 13;13(1):174. doi: 10.1007/s40820-021-00706-3.
In view of rich potassium resources and their working potential, potassium-ion batteries (PIBs) are deemed as next generation rechargeable batteries. Owing to carbon materials with the preponderance of durability and economic price, they are widely employed in PIBs anode materials. Currently, porosity design and heteroatom doping as efficacious improvement strategies have been applied to the structural design of carbon materials to improve their electrochemical performances. Herein, nitrogen-doped mesoporous carbon spheres (MCS) are synthesized by a facile hard template method. The MCS demonstrate larger interlayer spacing in a short range, high specific surface area, abundant mesoporous structures and active sites, enhancing K-ion migration and diffusion. Furthermore, we screen out the pyrolysis temperature of 900 °C and the pore diameter of 7 nm as optimized conditions for MCS to improve performances. In detail, the optimized MCS-7-900 electrode achieves high rate capacity (107.9 mAh g at 5000 mA g) and stably brings about 3600 cycles at 1000 mA g. According to electrochemical kinetic analysis, the capacitive-controlled effects play dominant roles in total storage mechanism. Additionally, the full-cell equipped MCS-7-900 as anode is successfully constructed to evaluate the practicality of MCS.
鉴于丰富的钾资源及其应用潜力,钾离子电池被视为下一代可充电电池。由于碳材料具有耐久性和经济价格优势,它们被广泛应用于钾离子电池的负极材料。目前,孔隙率设计和杂原子掺杂作为有效的改进策略已被应用于碳材料的结构设计,以提高其电化学性能。在此,通过一种简便的硬模板法合成了氮掺杂介孔碳球(MCS)。MCS在短程内表现出更大的层间距、高比表面积、丰富的介孔结构和活性位点,增强了钾离子的迁移和扩散。此外,我们筛选出900℃的热解温度和7nm的孔径作为MCS提高性能的优化条件。具体而言,优化后的MCS-7-900电极实现了高倍率容量(在5000mA g下为107.9mAh g),并在1000mA g下稳定循环3600次。根据电化学动力学分析,电容控制效应在总存储机制中起主导作用。此外,成功构建了以MCS-7-900为负极的全电池,以评估MCS的实用性。