Structure of Room Temperature Ionic Liquids on Charged Graphene: An integrated experimental and computational study

ORAL

Abstract

Electrical double layer capacitors (EDLCs) with room temperature ionic liquid (RTIL) electrolytes and carbon electrodes are promising candidates for energy storage devices with high power density and long cycle life. We studied the potential and time dependent changes in the electric double layer (EDL) structure of an imidazolium-based room temperature ionic liquid (RTIL) electrolyte at an epitaxial graphene (EG) surface. We used \textit{in situ} x-ray reflectivity (XR) to determine the EDL structure at static potentials, during cyclic voltammetry (CV) and potential step measurements. The static potential structures were also investigated with fully atomistic molecular dynamics (MD) simulations. Combined XR and MD results show that the EDL structure has alternating anion/cation layers within the first nanometer of the interface. The dynamical response of the EDL to potential steps has a slow component (\textgreater 10 s) and the RTIL structure shows hysteresis during CV scans. We propose a conceptual model that connects nanoscale interfacial structure to the macroscopic measurements.

Authors

  • Ahmet Uysal

    Argonne National Laboratory

  • Hua Zhou

    Argonne National Laboratory

  • Sang Soo Lee

    Argonne National Laboratory

  • Paul Fenter

    Argonne National Laboratory

  • Guang Feng

    Vanderbilt University

  • Song Li

    Vanderbilt University

  • Peter Cummings

    Vanderbilt University

  • Pasquale Fulvio

    Oak Ridge National Laboratory

  • Sheng Dai

    Oak Ridge National Laboratory

  • Jake McDonough

    Drexel University

  • Yury Gogotsi

    Drexel University