Sun Chenxu, Fang Shengfan, Zhao Kunyuan, Zhang Huipei, Qi Luyao, Qin Yanmin, Bao Haifeng
State Key Laboratory Cultivation Base for New Textile Materials and Advanced Processing Technology, School of Materials Science and Engineering, Wuhan Textile University, Wuhan 430200, China.
Patent Examination Cooperation Hubei Center of the Patent Office, CNIPA, Wuhan 430075, China.
J Colloid Interface Sci. 2025 Jan 15;678(Pt A):436-446. doi: 10.1016/j.jcis.2024.08.212. Epub 2024 Aug 27.
FeS, with its high theoretical capacity and natural abundance, holds significant promise as an anode material for lithium-ion batteries (LIBs). However, its practical application is constrained by poor electrical conductivity and substantial volume expansion during cycling, which impair charge-discharge efficiency and cycling stability. To overcome these challenges, we developed a nitrogen and sulfur co-doped carbon-encapsulated FeS composite with a hollow double-layer structure (HDL-FeS@NSC). Utilizing sulfur spheres as a sacrificial template, our inside-out synthesis strategy produces a unique material design. The HDL-FeS@NSC composite exhibits significant improvements in electrochemical performance compared to pure FeS. These enhancements are due to its increased specific surface area, which facilitates lithium-ion diffusion; a shortened Li diffusion pathway; structural stability that mitigates volume expansion; and an optimized carbon layer that boosts conductivity. The HDL-FeS@NSC-70 anode demonstrates a specific capacity of 879.6 mAh/g after 600 cycles at 1.0 A/g and retains 558.0 mAh/g at 5.0 A/g. Additionally, the lithium storage mechanism has been thoroughly investigated using in-situ techniques. These results suggest that the HDL-FeS@NSC composite anode has the potential to significantly enhance lithium-ion battery performance, offering a promising solution for next-generation energy storage systems.
硫化亚铁(FeS)因其高理论容量和天然丰度,作为锂离子电池(LIBs)的负极材料具有巨大潜力。然而,其实际应用受到电导率差和循环过程中大量体积膨胀的限制,这会损害充放电效率和循环稳定性。为了克服这些挑战,我们开发了一种具有中空双层结构的氮硫共掺杂碳包覆硫化亚铁复合材料(HDL-FeS@NSC)。利用硫球作为牺牲模板,我们的由内而外的合成策略产生了独特的材料设计。与纯硫化亚铁相比,HDL-FeS@NSC复合材料在电化学性能上有显著改善。这些增强归因于其增加的比表面积,这有利于锂离子扩散;缩短的锂扩散路径;减轻体积膨胀的结构稳定性;以及提高导电性的优化碳层。HDL-FeS@NSC-70负极在1.0 A/g下循环600次后比容量为879.6 mAh/g,在5.0 A/g下保持558.0 mAh/g。此外,还使用原位技术对锂存储机制进行了深入研究。这些结果表明,HDL-FeS@NSC复合负极有潜力显著提高锂离子电池性能,为下一代储能系统提供了一个有前景的解决方案。