TY - JOUR
T1 - Breaking the Energy Cascades
T2 - Stage-Specific Mitigation of Thermal Runaway Propagation in Lithium-Ion Battery Systems
AU - Li, Shihang
AU - Yang, Guangyu
AU - Xiao, Penghui
AU - Yu, Yongchao
AU - Guan, Jingwen
AU - Li, Wenqing
AU - Li, Xinze
AU - Chua, Dong Sheng
AU - Munyao, David Brian
AU - Huang, Que
AU - Liu, Changcheng
AU - Li, Lei
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/8/26
Y1 - 2026/8/26
N2 - Thermal safety remains a critical challenge for lithium-ion battery systems in electric vehicles and large-scale energy storage systems. Thermal runaway propagation is a stage-evolving, multiphysics-coupled energy cascade governed by triggering pathways, heat-transfer modes, and combustion behavior. This review reorganizes passive mitigation strategies according to the dominant hazards in the early, intermediate, and late stages of thermal runaway. Thermal buffering, thermal blocking, and fire suppression are integrated into a single framework. Major triggering pathways, including overcharge, external heating, and internal short circuits, are first summarized, followed by analysis of the stage-dependent evolution of solid-state conduction, vent-driven convection, and radiative and flame-mediated transport during propagation. Representative protective materials, including phase change materials, low-thermal-conductivity barriers, and fire suppressants, are then critically evaluated in terms of mechanism, trade-off, and stage-specific function. Beyond conventional layered barriers, future protection systems should evolve toward integrated, multifunctional intelligent platforms combining phase-change buffering, high-temperature insulation, and event-triggered suppression. Coupled with artificial-intelligence-assisted design and digital-twin-enabled validation, such platforms offer a promising route toward scalable battery thermal-safety architectures.
AB - Thermal safety remains a critical challenge for lithium-ion battery systems in electric vehicles and large-scale energy storage systems. Thermal runaway propagation is a stage-evolving, multiphysics-coupled energy cascade governed by triggering pathways, heat-transfer modes, and combustion behavior. This review reorganizes passive mitigation strategies according to the dominant hazards in the early, intermediate, and late stages of thermal runaway. Thermal buffering, thermal blocking, and fire suppression are integrated into a single framework. Major triggering pathways, including overcharge, external heating, and internal short circuits, are first summarized, followed by analysis of the stage-dependent evolution of solid-state conduction, vent-driven convection, and radiative and flame-mediated transport during propagation. Representative protective materials, including phase change materials, low-thermal-conductivity barriers, and fire suppressants, are then critically evaluated in terms of mechanism, trade-off, and stage-specific function. Beyond conventional layered barriers, future protection systems should evolve toward integrated, multifunctional intelligent platforms combining phase-change buffering, high-temperature insulation, and event-triggered suppression. Coupled with artificial-intelligence-assisted design and digital-twin-enabled validation, such platforms offer a promising route toward scalable battery thermal-safety architectures.
KW - intelligent protective materials
KW - lithium-ion battery
KW - passive mitigation
KW - stage-specific strategy
KW - thermal runaway propagation
UR - https://www.scopus.com/pages/publications/105045081358
U2 - 10.1002/aenm.71302
DO - 10.1002/aenm.71302
M3 - Review article
AN - SCOPUS:105045081358
SN - 1614-6832
VL - 16
JO - Advanced Energy Materials
JF - Advanced Energy Materials
IS - 32
M1 - e71302
ER -