4.8 Article

Wide-Temperature Electrolytes for Lithium-Ion Batteries

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 9, Issue 22, Pages 18826-18835

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.7b04099

Keywords

wide-temperature performance; low-temperature discharge; electrolyte; cesium cation; lithium-ion battery

Funding

  1. Laboratory Directed Research and Development (LDRD) Project under Technology Investment Program (TIP) at PNNL
  2. Energy Efficiency and Renewable Energy, Office of Vehicle Technologies of the U.S. Department of Energy (DOE) under the Batteries for Advanced Battery Materials Research (BMR) [DE-AC02-05CH11231, 6951379]
  3. Applied Battery Research (ABR)
  4. DOE's Office of Biological and Environmental Research
  5. Battelle for the Department of Energy [AC05-76RLO1830]

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Formulating electrolytes with solvents of low freezing points and high dielectric constants is a direct approach to extend the service-temperature range of lithium (Li)-ion batteries (LIBs). In this study, we report such wide-temperature electrolyte formulations by optimizing the ethylene carbonate (EC) content in the ternary solvent system of EC, propylene carbonate (PC), and ethyl methyl carbonate (EMC) with LiPF6 salt and CsPF6 additive. An extended service-temperature range from -40 to 60 degrees C was obtained in LIBs with lithium nickel cobalt aluminum oxide (LiNi0.80Co0.15Al0.05O2, NCA) as cathode and graphite as anode. The discharge capacities at low temperatures and the cycle life at room temperature and elevated temperatures were systematically investigated together with the ionic conductivity and phase-transition behaviors. The most promising electrolyte formulation was:identified as 1.0 M LiPF6 in EC-PC-EMC (1:1:8 by wt) with 0.05 M CsPF6, which was demonstrated in both coin cells of graphite parallel to NCA and 1 Ah pouch cells of graphite parallel to lLiNi(1/3)Mn(1/3)Co(1/3)O(2). This optimized electrolyte enables excellent wide-temperature performances, as evidenced by the high capacity retention (68%) at -40 degrees C and C/S rate, significantly higher than that (20%) of the conventional LIB electrolyte, and the nearly identical stable cycle life as the conventional LIB electrolyte at room temperature and elevated temperatures up to 60 degrees C.

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