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关注下一代电池的安全性。

Addressing the safety of next-generation batteries.

作者信息

Yang Chuanbo, Singh Avtar, Pu Xiaofei, Mallarapu Anudeep, Smith Kandler, Keyser Matt, Haberman Michael R, Khani Hadi, Misztal Pawel, Spray Ryan, Ezekoye Ofodike A, Finegan Donal P

机构信息

National Renewable Energy Laboratory, Golden, CO, USA.

Walker Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX, USA.

出版信息

Nature. 2025 Sep;645(8081):603-613. doi: 10.1038/s41586-025-09358-4. Epub 2025 Sep 17.

Abstract

Owing to increasing demand for low-cost energy storage with secure material supply chains, the battery community is approaching a pivotal shift beyond conventional lithium-ion (Li-ion) towards next-generation cells. Technologies that include alkali-metal anodes, solid electrolytes and earth-abundant materials such as sodium (Na) and sulfur (S) are reaching commercialization in cells. The abuse tolerance and thermal runaway hazards of such technologies diverge from conventional Li-ion cells. Consequently, designing safe batteries with next-generation materials requires a holistic approach to characterize cells and to understand their responses to abuse conditions from the beginning to the end of life. Here we provide a Perspective on how the safety and abuse tolerance of cells are likely to change for up-and-coming technologies; challenges and opportunities for reimagining safe cell and battery designs; gaps in our knowledge; capabilities for understanding the hazards of thermal runaway and how to address them; how standard abuse tests may need to adapt to new challenges; and how research needs to support affected professionals, from pack designers to first responders, to manage hazards and ensure safe roll-out of next-generation cells into applications like electric vehicles (EVs). Finally, given the large number of next-generation technologies being explored, we encourage giving priority to safety-focused research in proportion to the rate of manufacturing scale-up of each specific technology.

摘要

由于对具有安全材料供应链的低成本储能的需求不断增加,电池领域正面临着从传统锂离子电池向新一代电池的关键转变。包括碱金属负极、固体电解质以及钠(Na)和硫(S)等储量丰富的材料在内的技术正在使电池实现商业化。此类技术的滥用耐受性和热失控风险与传统锂离子电池不同。因此,使用新一代材料设计安全电池需要一种整体方法,以从电池寿命的开始到结束来表征电池,并了解它们对滥用条件的反应。在此,我们阐述了对于新兴技术,电池的安全性和滥用耐受性可能如何变化;重新构想安全电池和电池设计的挑战与机遇;我们知识上的差距;理解热失控危害以及应对这些危害的能力;标准滥用测试可能如何需要适应新挑战;以及研究如何需要支持从电池组设计师到急救人员等受影响的专业人员,以管理危害并确保将新一代电池安全推广到电动汽车等应用中。最后,鉴于正在探索的下一代技术众多,我们鼓励根据每种特定技术的制造规模扩大速度,优先开展以安全为重点的研究。

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