TY - JOUR
T1 - Electrolytes for low-temperature lithium metal batteries
T2 - An evolution-based framework for solvation, interfaces, and phase regulation
AU - Qin, Chao
AU - Wang, Tian
AU - Yu, Xin
AU - Bi, Jingxuan
AU - Wang, Ke
AU - Zhou, Zhenkai
AU - Ai, Wei
N1 - Publisher Copyright:
© 2024
PY - 2026/11/1
Y1 - 2026/11/1
N2 - Lithium metal batteries (LMBs) have attracted extensive attention due to their ultrahigh energy density and strong potential for next-generation high-performance energy storage. However, under low-temperature conditions, electrolyte-related limitations emerge as critical bottlenecks that severely restrict the practical deployment of LMBs. These challenges primarily arise from suppressed ionic conductivity, increased Li+ desolvation energy barriers, sluggish interfacial reaction kinetics, and exacerbated lithium dendrite growth accompanied by elevated safety risks. Addressing these issues requires a comprehensive design framework that goes beyond isolated parameter optimization and instead captures the intrinsic evolution behavior of electrolyte systems under low-temperature conditions. In this review, we establish an evolution-oriented design framework based on the chain-like and hierarchical degradation mechanisms of low-temperature electrolytes. Guided by this perspective, we systematically summarize and analyze recent progress in electrolyte design strategies for low-temperature LMBs from multiple interconnected dimensions, including fluidity-oriented regulation, solvation-structure modulation, interfacial stability engineering, and phase-state reconstruction. The emerging roles of artificial intelligence and high-throughput simulations in accelerating electrolyte discovery and enabling data-driven optimization are also discussed. Finally, key scientific challenges and future research directions are outlined, highlighting the need for synergistic regulation across solvation, interfacial, and phase-state domains to realize safe, high-performance, and wide-temperature-operable LMBs.
AB - Lithium metal batteries (LMBs) have attracted extensive attention due to their ultrahigh energy density and strong potential for next-generation high-performance energy storage. However, under low-temperature conditions, electrolyte-related limitations emerge as critical bottlenecks that severely restrict the practical deployment of LMBs. These challenges primarily arise from suppressed ionic conductivity, increased Li+ desolvation energy barriers, sluggish interfacial reaction kinetics, and exacerbated lithium dendrite growth accompanied by elevated safety risks. Addressing these issues requires a comprehensive design framework that goes beyond isolated parameter optimization and instead captures the intrinsic evolution behavior of electrolyte systems under low-temperature conditions. In this review, we establish an evolution-oriented design framework based on the chain-like and hierarchical degradation mechanisms of low-temperature electrolytes. Guided by this perspective, we systematically summarize and analyze recent progress in electrolyte design strategies for low-temperature LMBs from multiple interconnected dimensions, including fluidity-oriented regulation, solvation-structure modulation, interfacial stability engineering, and phase-state reconstruction. The emerging roles of artificial intelligence and high-throughput simulations in accelerating electrolyte discovery and enabling data-driven optimization are also discussed. Finally, key scientific challenges and future research directions are outlined, highlighting the need for synergistic regulation across solvation, interfacial, and phase-state domains to realize safe, high-performance, and wide-temperature-operable LMBs.
KW - Interfacial stability
KW - Lithium metal battery
KW - Low-temperature electrolytes
KW - Phase-state reconstruction
KW - Solvation-structure
UR - https://www.scopus.com/pages/publications/105041396186
U2 - 10.1016/j.ccr.2026.218188
DO - 10.1016/j.ccr.2026.218188
M3 - 文献综述
AN - SCOPUS:105041396186
SN - 0010-8545
VL - 566
JO - Coordination Chemistry Reviews
JF - Coordination Chemistry Reviews
M1 - 218188
ER -