ORCID
- Laudone, Giuliano: 0000-0001-6966-1163
Abstract
The challenge of optimizing the pore size distribution of porous electrodes for different electrolytes is encountered in supercapacitors, lithium-ion capacitors and hybridized battery-supercapacitor devices. A volume-averaged continuum model of ion transport, taking into account the pore size distribution, is employed for the design of porous electrodes for electrochemical double-layer capacitors (EDLCs) in this study. After validation against experimental data, computer simulations investigate two types of porous electrodes, an activated carbon coating and an activated carbon fabric, and three electrolytes: 1.5 M TEABF4 in acetonitrile (AN), 1.5 M TEABF4 in propylene carbonate (PC), and 1 M LiPF6 in ethylene carbonate:ethyl methyl carbonate (EC:EMC) 1:1 v/v. The design exercise concluded that it is important that the porous electrode has a large specific area in terms of micropores larger than the largest desolvated ion, to achieve high specific capacity, and a good proportion of mesopores larger than the largest solvated ion to ensure fast ion transport and accessibility of the micropores.
DOI
10.3390/c7010015
Publication Date
2021-01-29
Publication Title
C
Volume
7
Issue
1
Embargo Period
2021-03-20
Organisational Unit
School of Geography, Earth and Environmental Sciences
First Page
15
Last Page
15
Recommended Citation
Bates, J., Markoulidis, F., Lekakou, C., & Laudone, G. (2021) 'Design of Porous Carbons for Supercapacitor Applications for Different Organic Solvent-Electrolytes', C, 7(1), pp. 15-15. Available at: https://doi.org/10.3390/c7010015