Deflecting Dendrites by Introducing Compressive Stress in Li7La3Zr2O12 Using Ion Implantation

Research output: Contribution to journalArticleResearchpeer-review

Authors

  • Florian Flatscher
  • Manfred Burghammer
  • Hanne Sofie Søreide
  • Lukas Porz
  • Yanjun Li
  • Sigurd Wenner
  • Viktor Bobal
  • Steffen Ganschow
  • Bernhard Sartory
  • Constantinos Hatzoglou
  • Daniel Rettenwander

External Organisational units

  • Norwegian University of Science and Technology
  • Erich Schmid Institute of Materials Science
  • ESRF
  • Sintef Industry, Department of Materials and Nanotechnology
  • University of Oslo
  • Leibniz-Institut für Kristallzüchtung
  • Materials Center Leoben Forschungs GmbH

Abstract

Lithium dendrites belong to the key challenges of solid-state battery research. They are unavoidable due to the imperfect nature of surfaces containing defects of a critical size that can be filled by lithium until fracturing the solid electrolyte. The penetration of Li metal occurs along the propagating crack until a short circuit takes place. It is hypothesized that ion implantation can be used to introduce stress states into Li6.4La3Zr1.4Ta0.6O12 which enables an effective deflection and arrest of dendrites. The compositional and microstructural changes associated with the implantation of Ag-ions are studied via atom probe tomography, electron microscopy, and nano X-ray diffraction indicating that Ag-ions can be implanted up to 1 µm deep and amorphization takes place down to 650–700 nm, in good agreement with kinetic Monte Carlo simulations. Based on diffraction results pronounced stress states up to −700 MPa are generated in the near-surface region. Such a stress zone and the associated microstructural alterations exhibit the ability to not only deflect mechanically introduced cracks but also dendrites, as demonstrated by nano-indentation and galvanostatic cycling experiments with subsequent electron microscopy observations. These results demonstrate ion implantation as a viable technique to design “dendrite-free” solid-state electrolytes for high-power and energy-dense solid-state batteries.

Details

Original languageEnglish
Article number2307515
Number of pages8
JournalSmall
Volume20.2022
Issue number12
DOIs
Publication statusPublished - 9 Nov 2023