Gao Yijun, Song Shanshan, He Fei, Kong Xianglong, Xiao Zhong, Cui Xianchang, Cao Linbo, Zhang Yumeng, Liu Zhiliang, Yang Piaoping
Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Material Sciences and Chemical Engineering, Harbin Engineering University, Harbin, 150001, P. R. China.
Small. 2024 Dec;20(50):e2406489. doi: 10.1002/smll.202406489. Epub 2024 Sep 28.
Silicon (Si) has attracted considerable attention as a promising alternative to graphite in lithium-ion batteries (LIBs) because of its high theoretical capacity and voltage. However, the durability and cycling stability of Si-based composites have emerged as major obstacles to their widespread adoption as LIBs anode materials. To tackle these challenges, a hollow core-shell dodecahedra structure of a Si-based composite (HD-Si@C) is developed through a novel double-layer in situ growth approach. This innovative design ensures that the nano-sized Si particles are evenly distributed within a hollow carbon shell, effectively addressing issues like Si fragmentation, volume expansion, and detachment from the carbon layer during cycles. The HD-Si@C composite demonstrates remarkable structural integrity as a LIBs anode, resulting in exceptional electrochemical performance and promising practical applications, as evidenced by tests in pouch-type full cells. Notably, the composite shows outstanding cycling stability, retaining 85% of its initial capacity (713 mAh g) even after 3000 cycles at a high current rate of 5000 mA g. Additionally, the material achieves a gravimetric energy density of 369 W h kg, showcasing its potential for efficient energy storage solutions. This research signifies a significant step toward realizing the practical utilization of Si-based materials in the next generation of LIBs.
硅(Si)因其高理论容量和电压,作为锂离子电池(LIBs)中石墨的一种有前景的替代材料而备受关注。然而,硅基复合材料的耐久性和循环稳定性已成为其作为LIBs负极材料广泛应用的主要障碍。为应对这些挑战,通过一种新颖的双层原位生长方法,开发出了一种硅基复合材料的中空核壳十二面体结构(HD-Si@C)。这种创新设计确保了纳米级硅颗粒均匀分布在中空碳壳内,有效解决了诸如硅破碎、体积膨胀以及在循环过程中与碳层分离等问题。HD-Si@C复合材料作为LIBs负极表现出卓越的结构完整性,从而产生了优异的电化学性能和有前景的实际应用,软包型全电池测试证明了这一点。值得注意的是,该复合材料显示出出色的循环稳定性,即使在5000 mA g的高电流速率下经过3000次循环后,仍保留其初始容量(713 mAh g)的85%。此外,该材料实现了369 W h kg的重量能量密度,展示了其在高效储能解决方案方面的潜力。这项研究标志着在实现硅基材料在下一代LIBs中的实际应用方面迈出了重要一步。