Abstract
Solvents in liquid and gel polymer electrolytes are recognized for contributing to high ionic conductivity in high-energy-density lithium metal batteries. However, parasitic reactions involving solvents and lithium metal induce safety risks under thermal abuse conditions and poor lifespan during room-temperature cycles, which are rarely investigated. This study introduces a thermoresponsive mono-solvent electrolyte as a built-in safety switch. The mono-solvent electrolyte polymerizes at elevated temperatures, creating a passivate polymer network without residue solvents. The polymer exhibits high thermal stability with 91% mass retention at 200 °C and significantly suppresses side reactions between lithium metal and the electrolyte, reducing thermal runaway risks. Ah-level Li||LiNi0.8Co0.1Mn0.1O2 pouch batteries employing this electrolyte can efficiently improve the critical temperature of thermal runaway by 75 °C compared to the thermoresponsive gel polymer electrolyte. At ambient temperatures, the electrolyte promotes the formation of a stable solid electrolyte interphase (SEI) rich in LiF and Li2O, effectively reducing side reactions and dendrite growth on the lithium anode. Consequently, Li||LiNi0.5Co0.2Mn0.3O2 cells retain 91% capacity after 152 cycles, even under high-loading cathodes (19.7 mg cm−2, 3 mAh cm−2). This research offers valuable insights into inhibiting parasitic reactions during the electrochemical cycle and thermal runaway, enhancing the lifespan and safety of high-energy-density batteries.
Original language | English |
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Journal | Advanced Energy Materials |
DOIs | |
State | Accepted/In press - 2025 |
Externally published | Yes |
Keywords
- lithium metal battery
- safe
- solid electrolyte interphase
- thermal runaway
- thermoresponsive electrolyte