Journal of the American Chemical Society · 2014 · 855 citations · 52 references
EngineeringChemistryChemical EngineeringPolymer ChemistryEthylene OxideMaterials ScienceBattery Electrode MaterialsSolid Polymer ElectrolyteElectrochemical Power SourceLithium-ion BatteryLithium-ion BatteriesBattery AdditivesEnergy StoragePolymer MembranesSolid-state BatteryEnergy MaterialElectrochemistryShear ModuliLi-ion Battery MaterialsPolymer ScienceNew ApproachElectrochemical Energy StorageBatteries
Solid polymer electrolyte membranes are critical for high‑specific‑energy lithium‑metal polymer batteries, offering low volatility and improved safety over flammable liquid electrolytes, but most exhibit low room‑temperature ionic conductivity and allow lithium dendrite growth, which are major barriers to commercialization. We report a cross‑linked polyethylene/poly(ethylene oxide) SPE that achieves high ionic conductivity (>1.0×10⁻⁴ S cm⁻¹ at 25 °C) and excellent dendrite‑growth resistance. Despite a low modulus (~1.0×10⁵ Pa at 90 °C), the cross‑linked SPE shows remarkable dendrite‑growth resistance, indicating that high modulus is not required to control dendrite proliferation.
Solid polymer electrolyte (SPE) membranes are a critical component of high specific energy rechargeable Li-metal polymer (LMP) batteries. SPEs exhibit low volatility and thus increase the safety of Li-based batteries compared to current state-of-the-art Li-ion batteries that use flammable small-molecule electrolytes. However, most SPEs exhibit low ionic conductivity at room temperature, and often allow the growth of lithium dendrites that short-circuit the batteries. Both of these deficiencies are significant barriers to the commercialization of LMP batteries. Herein we report a cross-linked polyethylene/poly(ethylene oxide) SPE with both high ionic conductivity (>1.0 × 10(-4) S/cm at 25 °C) and excellent resistance to dendrite growth. It has been proposed that SPEs with shear moduli of the same order of magnitude as lithium could be used to suppress dendrite growth, leading to increased lifetime and safety for LMP batteries. In contrast to the theoretical predictions, the low-modulus (G' ≈ 1.0 × 10(5) Pa at 90 °C) cross-linked SPEs reported herein exhibit remarkable dendrite growth resistance. These results suggest that a high-modulus SPE is not a requirement for the control of dendrite proliferation.
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