Che Chang, Wu Feng, Li Yu, Li Ying, Li Shuqiang, Wu Chuan, Bai Ying
Beijing Key Laboratory of Environmental Science and Engineering, School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, P. R. China.
Yangtze Delta Region Academy of Beijing Institute of Technology, Jiaxing, 314019, P. R. China.
Adv Mater. 2024 Jul;36(28):e2402291. doi: 10.1002/adma.202402291. Epub 2024 May 6.
Lithium-based batteries (LBBs) have been highly researched and recognized as a mature electrochemical energy storage (EES) system in recent years. However, their stability and effectiveness are primarily confined to room temperature conditions. At temperatures significantly below 0 °C or above 60 °C, LBBs experience substantial performance degradation. Under such challenging extreme contexts, sodium-ion batteries (SIBs) emerge as a promising complementary technology, distinguished by their fast dynamics at low-temperature regions and superior safety under elevated temperatures. Notably, developing SIBs suitable for wide-temperature usage still presents significant challenges, particularly for specific applications such as electric vehicles, renewable energy storage, and deep-space/polar explorations, which requires a thorough understanding of how SIBs perform under different temperature conditions. By reviewing the development of wide-temperature SIBs, the influence of temperature on the parameters related to battery performance, such as reaction constant, charge transfer resistance, etc., is systematically and comprehensively analyzed. The review emphasizes challenges encountered by SIBs in both low and high temperatures while exploring recent advancements in SIB materials, specifically focusing on strategies to enhance battery performance across diverse temperature ranges. Overall, insights gained from these studies will drive the development of SIBs that can handle the challenges posed by diverse and harsh climates.
近年来,锂基电池(LBBs)得到了广泛研究,并被公认为一种成熟的电化学储能(EES)系统。然而,它们的稳定性和有效性主要局限于室温条件。在显著低于0°C或高于60°C的温度下,锂基电池的性能会大幅下降。在这种具有挑战性的极端环境下,钠离子电池(SIBs)作为一种有前途的互补技术应运而生,其特点是在低温区域具有快速动力学,在高温下具有卓越的安全性。值得注意的是,开发适用于宽温度使用的钠离子电池仍然面临重大挑战,特别是对于电动汽车、可再生能源存储和深空/极地探索等特定应用而言,这需要深入了解钠离子电池在不同温度条件下的性能表现。通过回顾宽温度钠离子电池的发展历程,系统而全面地分析了温度对与电池性能相关参数(如反应常数、电荷转移电阻等)的影响。该综述强调了钠离子电池在低温和高温环境中遇到的挑战,同时探讨了钠离子电池材料的最新进展,特别关注在不同温度范围内提高电池性能的策略。总体而言,从这些研究中获得的见解将推动钠离子电池的发展,使其能够应对各种恶劣气候带来的挑战。