首页|Self-actuating protection mechanisms for safer lithium-ion batteries

Self-actuating protection mechanisms for safer lithium-ion batteries

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Safety issue is still a problem nowadays for the large-scale application of lithium-ion batteries(LIBs)in electric vehicles and energy storage stations.The unsafe behaviors of LIBs arise from the thermal run-away,which is intrinsically triggered by the overcharging and overheating.To improve the safety of LIBs,various protection strategies based on self-actuating reaction control mechanisms(SRCMs)have been proposed,including redox shuttle,polymerizable monomer additive,potential-sensitive separator,thermal shutdown separator,positive-temperature-coefficient electrode,thermally polymerizable addi-tive,and reversible thermal phase transition electrolyte.As build-in protection mechanisms,these meth-ods can sensitively detect either the temperature change inside battery or the potential change of the electrode,and spontaneously shut down the electrode reaction at risky conditions,thus preventing the battery from going into thermal runaway.Given their advantages in enhancing the intrinsic safety of LIBs,this paper overviews the research progresses of SRCMs after a brief introduction of thermal runaway mechanism and limitations of conventional thermal runaway mitigating measures.More importantly,the current states and issues,key challenges,and future developing trends of SRCTs are also discussed and outlined from the viewpoint of practical application,aiming at providing insights and guidance for developing more effective SRCMs for LIBs.

Li-ion batterySafetyThermal runawayThermal protectionOvercharge protection

Yang Luo、Chunchun Sang、Kehan Le、Hao Chen、Hui Li、Xinping Ai

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Hubei Key Lab of Electrochemical Power Sources,College of Chemistry & Molecular Science,Wuhan University,Wuhan 430072,Hubei,China

State Key Laboratory of New Textile Materials & Advanced Processing Technologies,Wuhan Textile University,Wuhan 430200,Hubei,China

National Natural Science Foundation of ChinaNational Key R&D Program of ChinaNational Natural Science Foundation of China

U22A204382022YFB250210022309138

2024

能源化学
中国科学院大连化学物理研究所 中国科学院成都有机化学研究所

能源化学

CSTPCDEI
影响因子:0.654
ISSN:2095-4956
年,卷(期):2024.94(7)