Polymorphism of garnet solid electrolytes and its implications for grain-level chemo-mechanics

Nat Mater. 2022 Nov;21(11):1298-1305. doi: 10.1038/s41563-022-01333-y. Epub 2022 Sep 1.

Abstract

Understanding and mitigating filament formation, short-circuit and solid electrolyte fracture is necessary for advanced all-solid-state batteries. Here, we employ a coupled far-field high-energy diffraction microscopy and tomography approach for assessing the chemo-mechanical behaviour for dense, polycrystalline garnet (Li7La3Zr2O12) solid electrolytes with grain-level resolution. In situ monitoring of grain-level stress responses reveals that the failure mechanism is stochastic and affected by local microstructural heterogeneity. Coupling high-energy X-ray diffraction and far-field high-energy diffraction microscopy measurements reveals the presence of phase heterogeneity that can alter local chemo-mechanics within the bulk solid electrolyte. These local regions are proposed to be regions with the presence of a cubic polymorph of LLZO, potentially arising from local dopant concentration variation. The coupled tomography and FF-HEDM experiments are combined with transport and mechanics modelling to illustrate the degradation of polycrystalline garnet solid electrolytes. The results showcase the pathways for processing high-performing solid-state batteries.

Publication types

  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Electric Power Supplies*
  • Electrolytes* / chemistry
  • Microscopy
  • Tomography, X-Ray Computed
  • X-Ray Diffraction

Substances

  • Electrolytes