Energy & Environmental Science · 2014 · 77 citations · 23 references
EngineeringChemistryEthylene CarbonateChemical EngineeringAssistant SolventsMaterials ScienceElectrical EngineeringCryogenic OperationBattery Electrode MaterialsLithium-ion BatteryLithium-ion BatteriesBattery AdditivesEnergy StorageSolid-state BatteryLithium Ion BatteriesEnergy MaterialPhase DiagramElectrochemistryNitrile-assistant Eutectic ElectrolytesElectrochemical Energy StorageBatteriesAnode Materials
The charge/discharge characteristics of lithium ion batteries at low temperature (LT = −20 °C) are enhanced by using ethylene carbonate (EC)-based electrolytes with the help of assistant solvents of nitriles. Conventional liquid electrolytes (e.g. a mixture of EC and dimethyl carbonate (DMC), abbreviated as LED) cannot support a satisfactory capacity at low temperature as well as at high rates even if electric vehicles require low-temperature operation. Introducing propionitrile or butyronitrile (Pn or Bn) into LED (resulting in LEDPn or LEDBn) as a co-solvent increases significantly the high-rate capacities at −20 °C. For example, LEDPn delivers 62% of the available capacity at 1 C and 46% at 3 C with a 2.7 V cut-off while the control LED provides just 6% and 4% at the same rates. Successful operation at −20 °C with nitrile-assistant electrolytes results from high ionic conductivity, low viscosity and freezing point depression caused by the eutectic behavior of the carbonates (EC/DMC) and Pn. Based on the phase diagram of Pn with EC/DMC, we expect a meaningful battery operation up to −110 °C, probably lower, at the eutectic composition.
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The Current Move of Lithium Ion Batteries Towards the Next Phase
Tae‐Hee Kim, Jeong‐Seok Park, Sung Kyun Chang et al. · Advanced Energy Materials · 2012 · 727 citations · Full text
Seong‐Min Bak, Kyung‐Wan Nam, Wonyoung Chang et al. · Chemistry of Materials · 2013 · 375 citations
Marshall C. Smart, B. V. Ratnakumar, S. Surampudi · Journal of The Electrochemical Society · 2002 · 230 citations
Materials Science, Chemical Engineering, Electrode Surface Films +14