Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble

Supercapacitors deliver higher power than batteries and find applications in grid integration and electric vehicles. Recent work by Chmiola et al. (2006) has revealed unexpected increase in the capacitance of porous carbon electrodes using ionic liquids as electrolytes. The work has generated curios...

Full description

Bibliographic Details
Main Authors: Ganeshprasad Pavaskar, Krishnaprasath Ramakrishnasubramanian, Vinay S. Kandagal, Parveen Kumar
Format: Article
Language:English
Published: Frontiers Media S.A. 2018-01-01
Series:Frontiers in Energy Research
Subjects:
Online Access:http://journal.frontiersin.org/article/10.3389/fenrg.2017.00036/full
id doaj-f6dfab909f5a4aedb5e4c43b741808e1
record_format Article
spelling doaj-f6dfab909f5a4aedb5e4c43b741808e12020-11-25T00:12:05ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2018-01-01510.3389/fenrg.2017.00036309507Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs EnsembleGaneshprasad Pavaskar0Krishnaprasath Ramakrishnasubramanian1Vinay S. Kandagal2Parveen Kumar3Center for Study of Science, Technology and Policy, Bangalore, IndiaDepartment of Chemical Engineering, Indian Institute of Science, Bangalore, IndiaCenter for Study of Science, Technology and Policy, Bangalore, IndiaCenter for Study of Science, Technology and Policy, Bangalore, IndiaSupercapacitors deliver higher power than batteries and find applications in grid integration and electric vehicles. Recent work by Chmiola et al. (2006) has revealed unexpected increase in the capacitance of porous carbon electrodes using ionic liquids as electrolytes. The work has generated curiosity among both experimentalists and theoreticians. Here, we have performed molecular simulations using a recently developed technique (Punnathanam, 2014) for simulating supercapacitor system. In this technique, the two electrodes (containing electrolyte in slit pore) are simulated in two different boxes using the Gibbs ensemble methodology. This reduces the number of particles required and interfacial interactions, which helps in reducing computational load. The method simulates an electric double-layer capacitor (EDLC) with macroscopic electrodes with much smaller system sizes. In addition, the charges on individual electrode atoms are allowed to vary in response to movement of electrolyte ions (i.e., electrode is polarizable) while ensuring these atoms are at the same electric potential. We also present the application of our technique on EDLCs with the electrodes modeled as slit pores and as complex three-dimensional pore networks for different electrolyte geometries. The smallest pore geometry showed an increase in capacitance toward the potential of 0 charge. This is in agreement with the new understanding of the electrical double layer in regions of dense ionic packing, as noted by Kornyshev’s theoretical model (Kornyshev, 2007), which also showed a similar trend. This is not addressed by the classical Gouy–Chapman theory for the electric double layer. Furthermore, the electrode polarizability simulated in the model improved the accuracy of the calculated capacitance. However, its addition did not significantly alter the capacitance values in the voltage range considered.http://journal.frontiersin.org/article/10.3389/fenrg.2017.00036/fullsupercapacitorselectrodesionic liquidscapacitanceMonte Carlo simulations
collection DOAJ
language English
format Article
sources DOAJ
author Ganeshprasad Pavaskar
Krishnaprasath Ramakrishnasubramanian
Vinay S. Kandagal
Parveen Kumar
spellingShingle Ganeshprasad Pavaskar
Krishnaprasath Ramakrishnasubramanian
Vinay S. Kandagal
Parveen Kumar
Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble
Frontiers in Energy Research
supercapacitors
electrodes
ionic liquids
capacitance
Monte Carlo simulations
author_facet Ganeshprasad Pavaskar
Krishnaprasath Ramakrishnasubramanian
Vinay S. Kandagal
Parveen Kumar
author_sort Ganeshprasad Pavaskar
title Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble
title_short Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble
title_full Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble
title_fullStr Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble
title_full_unstemmed Modeling Electric Double-Layer Capacitors Using Charge Variation Methodology in Gibbs Ensemble
title_sort modeling electric double-layer capacitors using charge variation methodology in gibbs ensemble
publisher Frontiers Media S.A.
series Frontiers in Energy Research
issn 2296-598X
publishDate 2018-01-01
description Supercapacitors deliver higher power than batteries and find applications in grid integration and electric vehicles. Recent work by Chmiola et al. (2006) has revealed unexpected increase in the capacitance of porous carbon electrodes using ionic liquids as electrolytes. The work has generated curiosity among both experimentalists and theoreticians. Here, we have performed molecular simulations using a recently developed technique (Punnathanam, 2014) for simulating supercapacitor system. In this technique, the two electrodes (containing electrolyte in slit pore) are simulated in two different boxes using the Gibbs ensemble methodology. This reduces the number of particles required and interfacial interactions, which helps in reducing computational load. The method simulates an electric double-layer capacitor (EDLC) with macroscopic electrodes with much smaller system sizes. In addition, the charges on individual electrode atoms are allowed to vary in response to movement of electrolyte ions (i.e., electrode is polarizable) while ensuring these atoms are at the same electric potential. We also present the application of our technique on EDLCs with the electrodes modeled as slit pores and as complex three-dimensional pore networks for different electrolyte geometries. The smallest pore geometry showed an increase in capacitance toward the potential of 0 charge. This is in agreement with the new understanding of the electrical double layer in regions of dense ionic packing, as noted by Kornyshev’s theoretical model (Kornyshev, 2007), which also showed a similar trend. This is not addressed by the classical Gouy–Chapman theory for the electric double layer. Furthermore, the electrode polarizability simulated in the model improved the accuracy of the calculated capacitance. However, its addition did not significantly alter the capacitance values in the voltage range considered.
topic supercapacitors
electrodes
ionic liquids
capacitance
Monte Carlo simulations
url http://journal.frontiersin.org/article/10.3389/fenrg.2017.00036/full
work_keys_str_mv AT ganeshprasadpavaskar modelingelectricdoublelayercapacitorsusingchargevariationmethodologyingibbsensemble
AT krishnaprasathramakrishnasubramanian modelingelectricdoublelayercapacitorsusingchargevariationmethodologyingibbsensemble
AT vinayskandagal modelingelectricdoublelayercapacitorsusingchargevariationmethodologyingibbsensemble
AT parveenkumar modelingelectricdoublelayercapacitorsusingchargevariationmethodologyingibbsensemble
_version_ 1725401358608105472