Hoseini Seyed Ali, Mohajerzadeh Shams, Sanaee Zeinab
Thin Film and Nano-Electronic Lab, School of Electrical and Computer Eng., University of Tehran, 14395-515, Tehran, Iran.
Nano-fabricated Energy Devices Lab, School of Electrical and Computer Eng., University of Tehran, 14395-515, Tehran, Iran.
Sci Rep. 2025 Jan 30;15(1):3733. doi: 10.1038/s41598-025-88019-y.
Core-shell silicon/multiwall carbon nanotubes are one of the most promising anode candidates for further improvement of lithium-ion batteries. Sufficient accommodation for massive volume expansion of silicon during the lithiation process and preventing pulverization and delamination with easy fabrication processes are still critical issues for practical applications. In this study, core-shell silicon/MWCNTs anode materials were synthesized using a facile and controllable PECVD technique to realize aligned MWCNTs followed by a silicon sputtering step. The use of the PECVD technique and the direct growth of multi-walled carbon nanotubes on the current collector creates a low tortuosity, flexible, and conductive scaffold, which, in addition to preventing CNT agglomeration, alleviates the pulverization and delamination of the silicon active material from the current collector, leading to the formation of an electrode with unique electrochemical performance. The CNT-Si core-shell electrode can achieve an excellent gravimetric specific capacity of 3250 mAh/g under a rate of C/5 and 99.8% capacity retention after more than 700 cycles. Electron microscopy revealed that the electrode structure has maintained its integrity and stability during long cycling (700 cycles and more). Apart from achieving high charging capacity, the use of such configuration leads to the formation of facile, inexpensive free-standing binder-free electrodes with no need to polymeric binders.
核壳结构的硅/多壁碳纳米管是进一步改进锂离子电池最有前景的负极候选材料之一。在锂化过程中为硅的大量体积膨胀提供足够的容纳空间,并通过简便的制造工艺防止硅的粉碎和分层,仍然是实际应用中的关键问题。在本研究中,采用简便可控的PECVD技术合成了核壳结构的硅/MWCNTs负极材料,以实现多壁碳纳米管的定向排列,随后进行硅溅射步骤。PECVD技术的使用以及多壁碳纳米管在集流体上的直接生长形成了低曲折度、柔性且导电的支架,除了防止碳纳米管团聚外,还减轻了硅活性材料与集流体之间的粉碎和分层,从而形成具有独特电化学性能的电极。CNT-Si核壳电极在C/5倍率下可实现3250 mAh/g的优异重量比容量,经过700多次循环后容量保持率为99.8%。电子显微镜显示,电极结构在长时间循环(700次循环及以上)过程中保持了其完整性和稳定性。除了实现高充电容量外,使用这种结构还能形成简便、廉价的自支撑无粘结剂电极,无需使用聚合物粘结剂。