Disentangling conduction pathways at the ionic–electronic interface in EMI-TFSI-covered graphene transistors
Abstract
Transport of electrons and ions at carbon surfaces immersed in electrolytes is instrumental for a wide variety of membrane processes as well as energy storage in batteries and supercapacitors. Ion transport in a nanoporous electrode strongly depends on its electronic conductance and on the interfacial capacitance with the electrolyte. In this study, we use in-plane impedance spectroscopy to disentangle in-plane ionic and electronic transport on a single crystal graphene transistor covered by an ionic liquid droplet (1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide, EMI-TFSI). droplet. Due to the atomic thickness of graphene combined to the strong affinity of EMI+ for carbon, this transistor maximizes ion–electron couplings. Using gate- and temperature-dependent in-plane spectroscopy, we extract both the electronic and ionic conductance of the transistor on a wide range of charge carrier density and over several decades of electrolyte conductivity. We show that despite an exceptionally high capacitive coupling at the carbon–EMI-TFSI interface, the ionic and electronic transport pathways are decoupled at the micrometric scale, in agreement with predicted lengthscales involved in the electronic-ionic interfacial transport.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (7)
Mathieu Lizée
Laboratoire de Physique de l’École Normale Supérieure
Ali Esfandiar
Department of Molecular Spectroscopy, Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany
Eva Panoni
Laboratoire de Physique de l’École Normale Supérieure
Artem Mischenko
Department of Physics and Astronomy
Pierre-Louis Taberna
Université Toulouse III Paul Sabatier Centre Interuniversitaire de Recherche et d’Ingénierie des Matériaux Laboratory UMR CNRS 5085
Patrice Simon
Université Toulouse III Paul Sabatier Centre Interuniversitaire de Recherche et d’Ingénierie des Matériaux Laboratory UMR CNRS 5085
Lydéric Bocquet
Laboratoire de Physique de l’École Normale Supérieure