Li Peng, Hwang Jang-Yeon, Sun Yang-Kook
Department of Energy Engineering , Hanyang University , Seoul 133-791 , Republic of Korea.
ACS Nano. 2019 Feb 26;13(2):2624-2633. doi: 10.1021/acsnano.9b00169. Epub 2019 Feb 15.
With the ever-increasing demand for lithium-ion batteries (LIBs) with higher energy density, tremendous attention has been paid to design various silicon-active materials as alternative electrodes due to their high theoretical capacity (ca. 3579 mAh g). However, totally replacing the commercially utilized graphite with silicon is still insurmountable owing to bottlenecks such as low electrode loading and insufficient areal capacity. Thus, in this study, we turn back to enhanced graphite electrode through the cooperation of modified silicon via a facile and scalable blending process. The modified nano/microstructured silicon with boron doping and carbon nanotube wedging (B-Si/CNT) can provide improved stability (88.2% retention after 200 cycles at 2000 mA g) and high reversible capacity (∼2426 mAh g), whereas the graphite can act as a tough framework for high loading. Owing to the synergistic effect, the resultant B-Si/CNT-graphite composite (B-Si/CNT@G) shows a high areal capacity of 5.2 mAh cm and excellent cycle retention of 83.4% over 100 cycles, even with ultrahigh active mass loading of 11.2 mg cm,which could significantly surpass the commercially used graphite electrode. Notably, the composite also exhibits impressive application in Li-ion full battery using 2 mol % Al-doped full-concentration-gradient Li[NiCoMn]O (Al2-FCG76) as the cathode with excellent capacity retention of 82.5% even after 300 cycles and an outstanding energy density (8.0 mWh cm) based on the large mass loading of the cathode (12.0 mg cm).
随着对具有更高能量密度的锂离子电池(LIBs)的需求不断增加,由于各种硅活性材料具有高理论容量(约3579 mAh g),因此人们对将其设计为替代电极给予了极大关注。然而,由于诸如低电极负载和面积容量不足等瓶颈,用硅完全替代商业使用的石墨仍然难以实现。因此,在本研究中,我们通过一种简便且可扩展的混合工艺,通过改性硅的协同作用,回归到增强石墨电极。具有硼掺杂和碳纳米管楔入的改性纳米/微结构硅(B-Si/CNT)可以提供更高的稳定性(在2000 mA g下循环200次后保留率为88.2%)和高可逆容量(约2426 mAh g),而石墨可以作为高负载的坚固框架。由于协同效应,所得的B-Si/CNT-石墨复合材料(B-Si/CNT@G)即使在11.2 mg cm的超高活性质量负载下,仍具有5.2 mAh cm的高面积容量和100次循环中83.4%的优异循环保留率,这可以显著超过商业使用的石墨电极。值得注意的是,该复合材料在以2 mol%铝掺杂的全浓度梯度Li[NiCoMn]O(Al2-FCG76)作为正极的锂离子全电池中也表现出令人印象深刻的应用,即使在300次循环后仍具有82.5%的优异容量保持率,并且基于正极的大质量负载(12.0 mg cm)具有出色的能量密度(8.0 mWh cm)。