345
Perspectives and Challenges
2. Development and investigation of various formulations and nanostructures of metal oxide pseudocapacitor materials to improve
energy storage capabilities
3. Development and investigation of novel conductive polymer compositions and nanostructures to improve redox center utilization and
energy storage capabilities
4. Development and investigation of composite electrode materials, integrating their combined benefits and overcoming associated challenges
5. Investigation of unique ionic liquid combinations and compositions
to optimize physical properties, temperature dependence, and electrode compatibility
6. Further the fundamental understanding of computational tools examining specific physical and chemical phenomena occurring during ES
charging, storage, and discharge of the aforementioned materials
References
1. Zhao, X. et al. 2011. The role of nanomaterials in redox-based supercapacitors
for next generation energy storage devices. Nanoscale, 3, 839–855.
2. Azaïs, P. et al. 2007. Causes of supercapacitor aging in organic electrolytes.
Journal of Power Sources, 171, 1046–1053.
3. Miller, J. R. and A. F. Burke. 2008. Electrochemical capacitors, challenges, and
opportunities for real world applications. Interface, 17, 53–57.
4. Dangler, C. et al. 2011. Role of conducting carbon in electrodes for electric double-layer capacitors. Materials Letters, 65, 300–303.
5. Portet, C. et al. 2004. Modification of Al current collector surface by sol–gel
deposit for carbon–carbon supercapacitor applications. Electrochimica Acta, 49,
905–912.
6. Wu, H. C. et al. 2009. High performance carbon-based supercapacitors using Al
current collector with conformal carbon coating. Materials Chemistry and Physics,
117, 294–300.
7. Portet, C. et al. 2006. Modification of Al current collector–active material interface for power improvement of electrochemical capacitor electrodes. Journal of
the Electrochemical Society, 153, A649–A653.
8. Zhou, R. et al. 2010. High performance supercapacitors using a nanoporous current collector made from super-aligned carbon nanotubes. Nanotechnology, 21,
345701.
9. Jang, J. H. et al. 2006. Electrophoretic deposition (EPD) of hydrous ruthenium
oxides with PTFE and their supercapacitor performances. Electrochimica Acta, 52,
1733–1741.
10. Ma, S. B. et al. 2007. Synthesis and characterization of manganese dioxide spontaneously coated on carbon nanotubes. Carbon, 45, 375–382.
Précédent

- 372/382

Suivant