| Literature DB >> 28757963 |
X Lin1, R Kavian2, Y Lu2, Q Hu2, Y Shao-Horn2, M W Grinstaff1.
Abstract
Rechargeable batteries such as Li ion/Li metal batteries are widely used in the electronics market but the chemical instability of the electrolyte limits their use in more demanding environmental conditions such as in automotive, oil exploration, or mining applications. In this study, a series of alkyl phosphonium ionic liquid electrolyte are described with high thermal stability and solubility for LiTFSI. A lithium metal battery (LMB) containing a tailored phosphonium ionic liquid/LiTFSI electrolyte operates at 100 °C with good specific capacities and cycling stability. Substantial capacity is maintained during 70 cycles or 30 days. Instant on-off battery operation is realized via the significant temperature dependence of the electrolyte material, demonstrating the robustness and potential for use at high temperature.Entities:
Year: 2015 PMID: 28757963 PMCID: PMC5506629 DOI: 10.1039/c5sc01518a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Chemical structures of ionic liquids under investigation. (A) Ionic liquids investigated in pre-screening; (B) picture and long-term thermal stability of the selected ionic liquid (mono-(C6)3PC10TFSI) for battery testing.
Fig. 2(A) Conductivity of a series of phosphonium ionic liquids with varied numbers of phosphonium centers, alkyl chain length and anions. IL 1: di-Cl(C6)3PC10P(C6)3Cl; IL 2: di-Cl(C4)3PC10P(C4)3Cl; IL 3: di-Cl(C8)3PC10P(C8)3Cl; IL 4: mono-(C6)3PC10Cl; IL 5: mono-(C4)3PC6Br; IL 6: di-Cl(C8)3PC2P(C8)3Cl; IL 7: mono-(C6)3PC10BF4; IL 8: mono-(C6)3PC10TFSI. (B) Conductivity and viscosity of mono-(C6)3PC10-TFSI loaded with different concentrations of LiTFSI as a function of temperature.
Fig. 3(A) The percent of specific capacity of cycle 1 at cycle 20 for 0.3 M, 1.0 M and 1.6 M compositions respectively. (B) Galvanostatic charge–discharge cycling for 1.6 M LiTFSI composition, current rate at C/7.
Fig. 4(A) Charge–discharge voltage profile of the thermally responsive ionic liquid electrolyte in a (Li, LiCoO2, mono-(C6)3PC10-TFSI, 1.6 M LiTFSI) cell (current rate C/7). Measurements are presented by heating from 25 to 120 °C and five cycles were measured at each temperature. (B) Demonstration of battery working only at high temperature and retain capacity at room temperature.