Wang Xiaojie, Fang Qian, Zheng Tiejun, Xu Yanyan, Dai Rui, Qiao Zhijun, Ruan Dianbo, Wang Yuzuo
Institute of Advanced Energy Storage Technology and Equipment Faculty, Ningbo University, Ningbo 315211, China.
Nanomaterials (Basel). 2023 Dec 26;14(1):65. doi: 10.3390/nano14010065.
Mechanical ball milling is a prevalent technology for material preparation and also serves as a post-treatment method to modify electrode materials, thus enhancing electrochemical performances. This study explores the microstructure modification of commercial activated carbon through mechanical ball milling, proving its efficacy in increasing sodium-ion energy storage. The evolution of activated carbon's physical and chemical properties during ball milling was systematically examined. It was observed that the quantity of closed pores and the graphitization degree in activated carbon increased with extended ball milling duration. The sodium storage mechanism in activated carbon transitions to an insertion-pore filling process, significantly elevating platform capacity. Additionally, ball-milled activated carbon demonstrates remarkable long-term cycling stability (92% capacity retention over 200 cycles at 200 mA g) and rate performance. This research offers a novel approach to developing advanced anode materials for sodium-ion batteries.
机械球磨是一种常用的材料制备技术,也是一种用于改性电极材料的后处理方法,从而提高电化学性能。本研究通过机械球磨探索了商用活性炭的微观结构改性,证明了其在提高钠离子储能方面的有效性。系统研究了球磨过程中活性炭物理和化学性质的演变。观察到随着球磨时间的延长,活性炭中闭孔数量和石墨化程度增加。活性炭中的储钠机制转变为插入-孔填充过程,显著提高了平台容量。此外,球磨后的活性炭表现出显著的长期循环稳定性(在200 mA g下200次循环后容量保持率为92%)和倍率性能。本研究为开发先进的钠离子电池负极材料提供了一种新方法。