Effect of pore size and its dispersity on the energy storage in nanoporous supercapacitors
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- 17 January 2012
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Energy & Environmental Science
- Vol. 5 (4) , 6474-6479
- https://doi.org/10.1039/c2ee03092f
Abstract
This paper focuses on the choice of the optimal pore size and the effect of pore size dispersion, which is important for the rational design of nanoporous supercapacitors. Optimization of the pore size of nanoporous carbon electrodes is discussed in terms of the maximal stored energy density. By applying a previously developed theory, and supporting it by newly performed experiments, we find that the energy density is a non-monotonic function of the pore size of monodisperse porous electrodes. The ‘optimal’ pore size that provides the maximal energy density increases with increasing operating voltage and saturates at high voltages. We also analyse how the pore size distribution affects the voltage dependent capacitance and the stored energy density, and show that the latter is maximized for monodisperse electrodes.Keywords
This publication has 25 references indexed in Scilit:
- Supercapacitor Capacitance Exhibits Oscillatory Behavior as a Function of Nanopore SizeThe Journal of Physical Chemistry Letters, 2011
- Complex Capacitance Scaling in Ionic Liquids-Filled NanoporesACS Nano, 2011
- Capacitance in carbon pores of 0.7 to 15 nm: a regular patternPhysical Chemistry Chemical Physics, 2011
- A superionic state in nano-porous double-layer capacitors: insights from Monte Carlo simulationsPhysical Chemistry Chemical Physics, 2011
- Superionic state in double-layer capacitors with nanoporous electrodesJournal of Physics: Condensed Matter, 2010
- Materials for electrochemical capacitorsNature Materials, 2008
- Relation between the Ion Size and Pore Size for an Electric Double-Layer CapacitorJournal of the American Chemical Society, 2008
- Monte Carlo Simulation of Porous Electrodes in the Constant Voltage EnsembleThe Journal of Physical Chemistry C, 2007
- Anomalous Increase in Carbon Capacitance at Pore Sizes Less Than 1 NanometerScience, 2006
- Method for the calculation of effective pore size distribution in molecular sieve carbon.JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 1983