锂离子电池技术及其他技术的粘合剂:全面回顾

Muskan Srivastava, Anil Kumar M. R., Karim Zaghib
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摘要

全球变暖的影响突出表明,迫切需要有效的解决方案来解决这一问题。通过广泛采用电动汽车(EV)实现社会电气化是应对气候变化的一项重要战略。锂离子电池(LIB)是全球电动汽车储能市场的重要组成部分,钠离子电池(SIB)因其快速增长的潜力而再次受到关注。安全性和稳定性的提高也使固态电池(SSB)跻身世界顶级电池之列。本综述探讨了三种关键的电池技术:LIB、SIB 和 SSB。虽然历来的研究都集中在电极等较重的电池组件上,以达到较高的重力密度,但占电池重量不到 5%的粘合剂在满足日益增长的储能需求方面已显示出巨大的前景。本综述深入研究了各种粘结剂,重点关注它们在水和有机溶剂中的溶解性。了解粘合剂的作用机理对于开发出能与电极保持较强粘合力的粘合剂至关重要,即使是在由石化和脱石化引起的体积波动时也是如此。因此,我们研究了与粘结剂相关的不同机制。本综述还讨论了失效机制和创新设计策略,以提高粘合剂的性能,如复合粘合剂、导电粘合剂和自修复粘合剂。通过对这些领域的研究,我们希望开发出更可靠、更高效的储能技术,同时帮助满足未来的能源需求。
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Binders for Li-Ion Battery Technologies and Beyond: A Comprehensive Review
The effects of global warming highlight the urgent need for effective solutions to this problem. The electrification of society, which occurs through the widespread adoption of electric vehicles (EVs), is a critical strategy to combat climate change. Lithium-ion batteries (LIBs) are vital components of the global energy-storage market for EVs, and sodium-ion batteries (SIBs) have gained renewed interest owing to their potential for rapid growth. Improved safety and stability have also put solid-state batteries (SSBs) on the chart of top batteries in the world. This review examines three critical battery technologies: LIBs, SIBs, and SSBs. Although research has historically concentrated on heavier battery components, such as electrodes, to achieve high gravimetric density, binders, which comprise less than 5% of the battery weight, have demonstrated great promise for meeting the increasing need for energy storage. This review thoroughly examines various binders, focusing on their solubilities in water and organic solvents. Understanding binder mechanisms is crucial for developing binders that maintain strong adhesion to electrodes, even during volume fluctuations caused by lithiation and delithiation. Therefore, we investigated the different mechanisms associated with binders. This review also discusses failure mechanisms and innovative design strategies to improve the performance of binders, such as composite, conductive, and self-healing binders. By investigating these fields, we hope to develop energy storage technologies that are more dependable and efficient while also helping to satisfy future energy needs.
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