Crystallization Dynamics of Amorphous Solid Electrolytes using Large Scale Atomistic Simulations

POSTER

Abstract

LiPON ceramic glass electrolytes offer the possibility to increase the energy density of batteries thanks to their resistance to dendrite formation, a problem in batteries using Li-metal anodes, yet the conductivity of oxide glasses is relatively poor. This work studies the fundamental process of amorphization, crystallization, and ion conduction within a wide composition range of lithium phosphate systems. We employ atomistic force fields developed from ab-initio dynamics trajectories and validated on lithium phosphates with comparison to ab-initio trajectories and experimental characterization. Using large-scale dynamics simulations we predict the structural relaxation and conductivity of glass electrolyte materials, reaching timescales and system sizes inaccessible to ab-initio methods. We show how the Li content determines both the ionic conductivity and the degree of corner-sharing, which in turn determines the ease of amorphization and provides insight into optimal glass processing conditions.

*This work is partially supported by the Advanced Projects Research Agency - Energy (ARPA-E), US Department of Energy, and by the Oak Ridge Leadership Computing Facility at the Oak Ridge National Laboratory, which is supported by the Office of Science of the US Department of Energy.

Presenters

  • Chris Ablitt

    • Department of Materials, Imperial College London

Authors

  • Chris Ablitt

    • Department of Materials, Imperial College London
  • Mordechai C Kornbluth

    • Research and Technology Center North America, Robert Bosch LLC
    • Columbia University
  • Jonathan P Mailoa

    • Robert Bosch LLC
    • Research and Technology Center North America, Robert Bosch LLC
    • Robert Bosch LLC Research and Technology Center
  • Boris Kozinsky

    • Harvard University
    • John A. Paulson School of Engineering and Applied Sciences, Harvard University