Your browser doesn't support javascript.
loading
Nanoarchitecture factors of solid electrolyte interphase formation via 3D nano-rheology microscopy and surface force-distance spectroscopy.
Chen, Yue; Wu, Wenkai; Gonzalez-Munoz, Sergio; Forcieri, Leonardo; Wells, Charlie; Jarvis, Samuel P; Wu, Fangling; Young, Robert; Dey, Avishek; Isaacs, Mark; Nagarathinam, Mangayarkarasi; Palgrave, Robert G; Tapia-Ruiz, Nuria; Kolosov, Oleg V.
  • Chen Y; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK. yuechen@fjnu.edu.cn.
  • Wu W; Fujian Normal University, College of Physics and Energy, 350117, Fuzhou, China. yuechen@fjnu.edu.cn.
  • Gonzalez-Munoz S; The Faraday Institution, Quad One, Harwell Science and Innovation Campus, OX11 0RA, Didcot, UK. yuechen@fjnu.edu.cn.
  • Forcieri L; College of Engineering, Swansea University, Bay Campus, Fabian Way, Swansea, SA18EN, UK.
  • Wells C; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK.
  • Jarvis SP; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK.
  • Wu F; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK.
  • Young R; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK.
  • Dey A; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK.
  • Isaacs M; Department of Physics, Lancaster University, Lancaster, LA1 4YB, UK.
  • Nagarathinam M; The Faraday Institution, Quad One, Harwell Science and Innovation Campus, OX11 0RA, Didcot, UK.
  • Palgrave RG; EPSRC National Facility for XPS (HarwellXPS), Research Complex at Harwell (RCaH), Harwell, Didcot, Oxfordshire, OX11 0FA, UK.
  • Tapia-Ruiz N; Department of Chemistry, Lancaster University, Lancaster, LA1 4YB, UK.
  • Kolosov OV; Department of Chemistry, University College London, 20 Gordon Street, London, WC1H 0AJ, UK.
Nat Commun ; 14(1): 1321, 2023 Mar 10.
Article en En | MEDLINE | ID: mdl-36898996
ABSTRACT
The solid electrolyte interphase in rechargeable Li-ion batteries, its dynamics and, significantly, its nanoscale structure and composition, hold clues to high-performing and safe energy storage. Unfortunately, knowledge of solid electrolyte interphase formation is limited due to the lack of in situ nano-characterization tools for probing solid-liquid interfaces. Here, we link electrochemical atomic force microscopy, three-dimensional nano-rheology microscopy and surface force-distance spectroscopy, to study, in situ and operando, the dynamic formation of the solid electrolyte interphase starting from a few 0.1 nm thick electrical double layer to the full three-dimensional nanostructured solid electrolyte interphase on the typical graphite basal and edge planes in a Li-ion battery negative electrode. By probing the arrangement of solvent molecules and ions within the electric double layer and quantifying the three-dimensional mechanical property distribution of organic and inorganic components in the as-formed solid electrolyte interphase layer, we reveal the nanoarchitecture factors and atomistic picture of initial solid electrolyte interphase formation on graphite-based negative electrodes in strongly and weakly solvating electrolytes.