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微米级硅基锂离子电池的结构设计与挑战

Structural Design and Challenges of Micron-Scale Silicon-Based Lithium-ion Batteries.

作者信息

He Wenjie, Xu Wei, Li Zhigang, Hu Zhaotong, Yang Jia, Qin Gang, Teng Weiming, Zhang Tengfei, Zhang Wei, Sun Zhengming, Yu Xuebin

机构信息

School of Materials Science and Engineering, Henan Polytechnic University, Jiaozuo, 454003, China.

College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, China.

出版信息

Adv Sci (Weinh). 2025 Feb;12(6):e2407540. doi: 10.1002/advs.202407540. Epub 2025 Jan 9.

Abstract

Currently, lithium-ion batteries (LIBs) are at the forefront of energy storage technologies. Silicon-based anodes, with their high capacity and low cost, present a promising alternative to traditional graphite anodes in LIBs, offering the potential for substantial improvements in energy density. However, the significant volumetric changes that silicon-based anodes undergo during charge and discharge cycles can lead to structural degradation. Furthermore, the formation of excessive solid-electrolyte interphases (SEIs) during cycling impedes the efficient migration of ions and electrons. This comprehensive review focuses on the structural design and optimization of micron-scale silicon-based anodes from both materials and systems perspectives. Significant progress is made in the development of advanced electrolytes, binders, and conductive additives that complement micron-scale silicon-based anodes in both half and full-cells. Moreover, advancements in system-level technologies, such as pre-lithiation techniques to mitigate irreversible Li loss, have enhanced the energy density and lifespan of micron-scale silicon-based full cells. This review concludes with a detailed classification of the underlying mechanisms, providing a comprehensive summary to guide the development of high-energy-density devices. It also offers strategic insights to address the challenges associated with the large-scale deployment of silicon-based LIBs.

摘要

目前,锂离子电池(LIBs)处于储能技术的前沿。硅基负极具有高容量和低成本的特点,在LIBs中是传统石墨负极的一种有前景的替代方案,具有大幅提高能量密度的潜力。然而,硅基负极在充放电循环过程中经历的显著体积变化会导致结构退化。此外,循环过程中过度的固体电解质界面(SEIs)的形成阻碍了离子和电子的有效迁移。这篇综述从材料和系统的角度重点关注微米级硅基负极的结构设计和优化。在开发先进的电解质、粘结剂和导电添加剂方面取得了重大进展,这些在半电池和全电池中都对微米级硅基负极起到了补充作用。此外,系统级技术的进步,如用于减轻不可逆锂损失的预锂化技术,提高了微米级硅基全电池的能量密度和寿命。这篇综述最后对潜在机制进行了详细分类,提供了全面的总结以指导高能量密度器件的开发。它还提供了战略见解,以应对与硅基LIBs大规模部署相关的挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7925/11809347/6794ce8b70a6/ADVS-12-2407540-g009.jpg

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