Ionic liquid structure, dynamics, and electrosorption in carbon electrodes with bimodal pores and heterogeneous surfaces

Boris Dyatkin, Naresh C. Osti, Yu Zhang, Hsiu Wen Wang, Eugene Mamontov, William T. Heller, Pengfei Zhang, Gernot Rother, Peter T. Cummings, David J. Wesolowski, Yury Gogotsi*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

44 Citations (Scopus)

Abstract

We investigate the aggregation, diffusion, and resulting electrochemical behavior of ionic liquids inside carbon electrodes with complex pore architectures and surface chemistries. Carbide-derived carbons (CDCs) with bimodal porosities and defunctionalized or oxidized electrode surfaces served as model electrode materials. Our goal was to obtain a fundamental understanding of room-temperature ionic liquid ion orientation, mobility, and electrosorption behavior. Neat 1-octyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide confined in CDCs was studied using an integrated experimental and modeling approach, consisting of quasielastic neutron scattering, small-angle neutron scattering, X-ray pair distribution function analysis, and electrochemical measurements, which were combined with molecular dynamics simulations. Our analysis shows that surface oxygen groups increase the diffusion of confined electrolytes. Consequently, the ions become more than twice as mobile in oxygen-rich pores. Although greater self-diffusion of ions translates into higher electrochemical mobilities in oxidized pores, bulk-like behavior of ions dominates in the larger mesopores and increases the overall capacitance in defunctionalized pores. Experimental results highlight strong confinement and surface effects of carbon electrodes on electrolyte behavior, and molecular dynamics simulations yield insight into diffusion and capacitance differences in specific pore regions. We demonstrate the significance of surface defects on electrosorption dynamics of complex electrolytes in hierarchical pore architectures of supercapacitor electrodes.

Original languageEnglish
Pages (from-to)104-118
Number of pages15
JournalCarbon
Volume129
DOIs
Publication statusPublished - Apr 2018

Keywords

  • Carbide-derived carbon
  • Energy storage
  • Interface
  • Ionic liquid
  • Molecular dynamics
  • Neutron scattering
  • Pair distribution function
  • Self-diffusion
  • Supercapacitor
  • Surface chemistry

ASJC Scopus subject areas

  • General Chemistry
  • General Materials Science

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