Ou Huihuang, Pei Bingying, Zhou Yifan, Yang Mei, Pan Junan, Liang Shuquan, Cao Xinxin
School of Materials Science and Engineering, Central South University, Changsha, Hunan, 410083, China.
School of Materials Science and Engineering, Xiangtan University, Xiangtan, Hunan, 411105, China.
Small Methods. 2025 Jan;9(1):e2400839. doi: 10.1002/smtd.202400839. Epub 2024 Aug 21.
Hard carbon (HC) is a promising anode material in alkali metal ion batteries owing to its cost-effectiveness, abundant sources, and low working voltage. However, challenges persist in achiving prolonged cycling stability and consistent capacity, and the sodium storage mechanism in HC is still debated. Herein, an unreported biomass precursor, "sisal," for deriving hard carbon is developed. A series of sisal hemp-derived hard carbon with natural 3D porous channels are prepared. Through phase characterization and electrochemical testing, the relationship between microstructure and sodium storage capacity is elucidated, further confirming the suitability of the "adsorption-insertion-filling" mechanism for sodium storage properties in hard carbon materials. Without the need for any additional modification strategies, this biomass-derived hard carbon demonstrates excellent electrochemical performance in both sodium-ion and potassium-ion batteries (SIBs and PIBs). The as-prepared HC-1300 demonstrates excellent ion storage capability, delivering a high reversible capacity of 345.2 mAh g in SIBs and 310 mAh g in PIBs at 0.1 C. Moreover, it maintains a specific capacity of 237.3 mAh g over 1200 cycles at 1 C when used in SIBs. The excellent cycling stability and superior rate performance are also presented in full cells, highlighting its potential for practical applications.
硬碳(HC)因其成本效益高、来源丰富且工作电压低,是碱金属离子电池中一种很有前景的负极材料。然而,在实现长时间循环稳定性和一致的容量方面仍存在挑战,并且硬碳中的储钠机制仍存在争议。在此,开发了一种未报道的用于制备硬碳的生物质前驱体“剑麻”。制备了一系列具有天然三维多孔通道的剑麻衍生硬碳。通过相表征和电化学测试,阐明了微观结构与储钠容量之间的关系,进一步证实了“吸附-嵌入-填充”机制对硬碳材料储钠性能的适用性。无需任何额外的改性策略,这种生物质衍生的硬碳在钠离子电池和钾离子电池(SIBs和PIBs)中均表现出优异的电化学性能。所制备的HC-1300表现出优异的离子存储能力,在0.1 C下,在SIBs中提供345.2 mAh g的高可逆容量,在PIBs中提供310 mAh g的高可逆容量。此外,当用于SIBs时,在1 C下1200次循环中它保持237.3 mAh g的比容量。全电池中也呈现出优异的循环稳定性和卓越的倍率性能,突出了其实际应用潜力。