AI Article Synopsis

  • Concentrated electrolyte solutions are gaining attention for their improved oxidative stability and increased availability of lithium ions, particularly lithium bis(fluorosulfonyl)imide (LiFSI) salts, though these are costly and have limitations with high-potential cathodes.
  • The study introduces a locally concentrated electrolyte made from 2 M LiPF dissolved in a mix of ethylene carbonate and diethyl carbonate, showing extended cycling stability and exceptional performance with nearly 98% efficiency over extended periods.
  • The success of this new electrolyte is largely due to fluoroethylene carbonate (FEC), which enhances ionic conductivity and helps create a stable interface, outperforming traditional carbonate-based electrolytes in lithium-metal battery applications.

Article Abstract

Currently, concentrated electrolyte solutions are attracting special attention because of their unique characteristics such as unusually improved oxidative stability on both the cathode and anode sides, the absence of free solvent, the presence of more anion content, and the improved availability of Li ions. Most of the concentrated electrolytes reported are lithium bis(fluorosulfonyl)imide (LiFSI) salt with ether-based solvents because of the high solubility of salts in ether-based solvents. However, their poor anti-oxidation capability hindered their application especially with high potential cathode materials (>4.0 V). In addition, the salt is very costly, so it is not feasible from the cost analysis point of view. Therefore, here we report a locally concentrated electrolyte, 2 M LiPF, in ethylene carbonate/diethyl carbonate (1:1 v/v ratio) diluted with fluoroethylene carbonate (FEC), which is stable within a wide potential range (2.5-4.5 V). It shows significant improvement in cycling stability of lithium with an average Coulombic efficiency (ACE) of ∼98% and small voltage hysteresis (∼30 mV) with a current density of 0.2 mA/cm for over 1066 h in Li||Cu cells. Furthermore, we ascertained the compatibility of the electrolyte for anode-free Li-metal batteries (AFLMBs) using Cu||LiNiMnCoO (NMC, ∼2 mA h/cm) with a current density of 0.2 mA/cm. It shows stable cyclic performance with ACE of 97.8 and 40% retention capacity at the 50th cycle, which is the best result reported for carbonate-based solvents with AFLMBs. However, the commercial carbonate-based electrolyte has <90% ACE and even cannot proceed more than 15 cycles with retention capacity >40%. The enhanced cycle life and well retained in capacity of the locally concentrated electrolyte is mainly because of the synergetic effect of FEC as the diluent to increase the ionic conductivity and form stable anion-derived solid electrolyte interphase. The locally concentrated electrolyte also shows high robustness to the effect of upper limit cutoff voltage.

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Source
http://dx.doi.org/10.1021/acsami.8b21052DOI Listing

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