| Literature DB >> 31649918 |
Weili Zhang1, Fuming Zhang1, Peng Zhang1, Shuo Liang1, Zhiqiang Shi1.
Abstract
Development of high voltage electrolyte is one of the effective ways to improve the performance of supercapacitor. The new ionic liquid N-propyl-N-methylpyrrolidinium difluoro(oxalato)borate (Py13DFOB) was designed and mixed with propylene carbonate (PC) as electrolyte for supercapacitor. The operating voltage of the new electrolyte system has been proven to be up to 3.0 V by a series of electrochemical techniques. Surprisingly, the new salt exhibits nearly symmetric capacitance contribution in the positive and negative electrodes, leading to a high capacitance value of 130 F g-1. The energy and power density of EDLCs using Py13DFOB in the PC electrolyte reach 39.06 Wh kg-1 (100 mA g-1) and 8.03 kW kg-1 (5,000 mA g-1), respectively, at the working voltage of 3.0 V, significantly exceeding the performance of commercial electrolyte tetraethylammonium tetrafluoroborate (TEABF4). The results indicate that Py13DFOB can be a promising electrolyte salt for supercapacitor.Entities:
Keywords: N-propyl-N-methylpyrrolidinium difluoro(oxalato)borate; electrolyte; high voltage; ionic liquid; supercapacitors
Year: 2019 PMID: 31649918 PMCID: PMC6794414 DOI: 10.3389/fchem.2019.00664
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Figure 1Molecular structures and volume of the electrolyte components.
Physical characteristics of Py13DFOB.
| Py13DFOB | 263.81 | 105 | 2.2 | 3.21 | 306 |
Figure 2DSC (A) and TGA (B) heating traces (5°C min−1) of the Py13DFOB.
Figure 3Relationship between conductivity (viscosity) and concentration of Py13DFOB/PC at 20°C.
Figure 4Operating potential determination using cyclic voltammetry. Coulombic efficiency (right axis) of cells used in the determination of anodic/cathodic limits. (A) Negative, (B) positive scans in different windows of the half-cell using 1 mol L−1 Py13DFOB/PC.
Figure 5Potential profiles of the positive and negative electrodes during galvanostatic charge/discharge of symmetric supercapacitor with 1 mol L−1 Py13DFOB/PC.
Figure 6(A) GCD curves of the EDLCs with 1 mol L−1 Py13DFOB/PC at current density of 500 mA g−1 with different voltage ranges. (B) Specific capacitance and (C) IR drop vs. voltage obtained from (A) charge-discharge curves. (D) The charge/discharge rates performance of EDLCs with 1.0 mol L−1 Py13DFOB/PC under different voltage ranges.
Figure 7(A) GCD curves at different current densities (B) CV curves at different scan rates (C) cycle performance at current density of 1 A g−1 and 10 A g−1 under 3.0 V of the EDLCs using 1.0 mol L−1 Py13DFOB/PC. (D) Ragone plots of the EDLCs with two electrolytes.