TY - JOUR
T1 - Safety Hazards of Lithium Metal Batteries
T2 - From the Perspective of Lithium Dendrites and Thermal Runaway
AU - Cui, Xiangming
AU - Wang, Jingzhao
AU - Sun, Shiyi
AU - Chen, Xin
AU - Wang, Yunqing
AU - Han, Daohong
AU - Wang, Jianan
AU - Yao, Xuhui
AU - Yan, Wei
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/4/24
Y1 - 2025/4/24
N2 - Lithium metal batteries (LMBs) have stepped into the spotlight for a decade, featuring significant potential for high energy density as well as compatibility with off-the-shelf lithium-ion technologies. However, the commercialization of LMBs has lagged behind expectations due to safety concerns related to short circuits. Recent advancements have focused on tackling lithium dendrites and separator/electrolyte-related dielectric failure. In this review, we cover the main factors that promote lithium dendrites and cause separator/electrolyte failure, highlighting the lithium plating mechanism and the decomposition chain triggered by Joule heat. Based on the fundamentals of electrochemistry, we assess and summarize the promising approaches that have been widely applied and proven in literature practice, including the construction of separators with high mechanical modulus and lithium affinity, the incorporation of functional components in electrolytes to regulate lithium plating, and the enhancement of the thermal stability and thermal strain ability of the separator/electrolyte system, among others. We believe that the understanding of mechanisms and proposed strategies may approach the threshold of breakthroughs, and a periodical review is helpful for both academia and industry in pursuing the commercialization of LMBs.
AB - Lithium metal batteries (LMBs) have stepped into the spotlight for a decade, featuring significant potential for high energy density as well as compatibility with off-the-shelf lithium-ion technologies. However, the commercialization of LMBs has lagged behind expectations due to safety concerns related to short circuits. Recent advancements have focused on tackling lithium dendrites and separator/electrolyte-related dielectric failure. In this review, we cover the main factors that promote lithium dendrites and cause separator/electrolyte failure, highlighting the lithium plating mechanism and the decomposition chain triggered by Joule heat. Based on the fundamentals of electrochemistry, we assess and summarize the promising approaches that have been widely applied and proven in literature practice, including the construction of separators with high mechanical modulus and lithium affinity, the incorporation of functional components in electrolytes to regulate lithium plating, and the enhancement of the thermal stability and thermal strain ability of the separator/electrolyte system, among others. We believe that the understanding of mechanisms and proposed strategies may approach the threshold of breakthroughs, and a periodical review is helpful for both academia and industry in pursuing the commercialization of LMBs.
UR - https://www.scopus.com/pages/publications/105003542884
U2 - 10.1021/acs.energyfuels.5c00728
DO - 10.1021/acs.energyfuels.5c00728
M3 - 文献综述
AN - SCOPUS:105003542884
SN - 0887-0624
VL - 39
SP - 7665
EP - 7690
JO - Energy and Fuels
JF - Energy and Fuels
IS - 16
ER -