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Dendrite-accelerated thermal runaway mechanisms of lithium metal pouch batteries 被引量:13
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作者 Xiang-Qun Xu Xin-Bing Cheng +8 位作者 Feng-Ni Jiang Shi-Jie Yang Dongsheng Ren Peng Shi hungjen hsu Hong Yuan Jia-Qi Huang Minggao Ouyang Qiang Zhang 《SusMat》 2022年第4期435-444,共10页
High-energy-density lithium metal batteries(LMBs)are widely accepted as promising next-generation energy storage systems.However,the safety features of practical LMBs are rarely explored quantitatively.Herein,the ther... High-energy-density lithium metal batteries(LMBs)are widely accepted as promising next-generation energy storage systems.However,the safety features of practical LMBs are rarely explored quantitatively.Herein,the thermal runaway behaviors of a 3.26 Ah(343 Wh kg^(−1))Li|LiNi_(0.5)Co_(0.2)Mn_(0.3)O_(2)pouch cell in the whole life cycle are quantitatively investigated by extended volume-accelerating rate calorimetry and differential scanning calorimetry.By thermal failure analyses on pristine cell with fresh Li metal,activated cell with once plated dendrites,and 20-cycled cell with large quantities of dendrites and dead Li,dendrite-accelerated thermal runaway mechanisms including reaction sequence and heat release contribution are reached.Suppressing dendrite growth and reducing the reactivity between Li metal anode and electrolyte at high temperature are effective strategies to enhance the safety performance of LMBs.These findings can largely enhance the understanding on the thermal runaway behaviors of Li metal pouch cells in practical working conditions. 展开更多
关键词 battery safety lithium metal dendrites lithium metal pouch cells solid electrolyte interphase thermal runaway whole life cycle
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