Ahad Syed Abdul, Kennedy Tadhg, Geaney Hugh
Department of Chemical Sciences, University of Limerick, Limerick V94 T9PX, Ireland.
Bernal Institute, University of Limerick, Limerick V94 T9PX, Ireland.
ACS Energy Lett. 2024 Mar 17;9(4):1548-1561. doi: 10.1021/acsenergylett.4c00262. eCollection 2024 Apr 12.
Nanowire (NW)-based anodes for Li-ion batteries (LIBs) have been under investigation for more than a decade, with their unique one-dimensional (1D) morphologies and ability to transform into interconnected active material networks offering potential for enhanced cycling stability with high capacity. This is particularly true for silicon (Si)-based anodes, where issues related to large volumetric expansion can be partially mitigated and the cycle life can be enhanced. In this Perspective, we highlight the trajectory of Si NWs from a model system to practical Li-ion battery anode material and future prospects for extension to beyond Li-ion batteries. The study examines key research areas related to Si NW-based anodes, including state-of-the-art (SoA) characterization approaches followed by practical anode design considerations, including NW composite anode formation and upscaling/full-cell considerations. An outlook on the practical prospects of NW-based anodes and some future directions for study are detailed.
基于纳米线(NW)的锂离子电池(LIB)阳极已经研究了十多年,其独特的一维(1D)形态以及转化为相互连接的活性材料网络的能力为实现高容量下增强的循环稳定性提供了潜力。对于基于硅(Si)的阳极尤其如此,在这种阳极中,与大体积膨胀相关的问题可以得到部分缓解,并且循环寿命可以得到提高。在这篇展望文章中,我们重点介绍了硅纳米线从模型系统发展成为实用锂离子电池阳极材料的历程以及扩展到锂离子电池之外的未来前景。该研究考察了与基于硅纳米线的阳极相关的关键研究领域,包括最先进(SoA)的表征方法,随后是实用阳极设计考量,包括纳米线复合阳极的形成以及放大/全电池考量。详细阐述了基于纳米线的阳极的实际前景展望以及一些未来的研究方向。