Abstract
The development of improved solid electrolytes (SEs) plays a crucial role in the advancement of bulk-type solid-state battery (SSB) technologies. In recent years, multicomponent or high-entropy SEs are gaining increased attention for their advantageous charge-transport and (electro)chemical properties. However, a comprehensive understanding of how configurational entropy affects ionic conductivity is largely lacking. Herein we investigate a series of multication-substituted lithium argyrodites with the general formula Li6+x[M1aM2bM3cM4d]S5I, with M being P, Si, Ge, and Sb. Structure-property relationships related to ion mobility are probed using a combination of diffraction techniques, solid-state nuclear magnetic resonance spectroscopy, and charge-transport measurements. We present, to the best of our knowledge, the first experimental evidence of a direct correlation between occupational disorder in the cationic host lattice and lithium transport. By controlling the configurational entropy through compositional design, high bulk ionic conductivities up to 18 mS cm−1 at room temperature are achieved for optimized lithium argyrodites. Our results indicate the possibility of improving ionic conductivity in ceramic ion conductors via entropy engineering, overcoming compositional limitations for the design of advanced electrolytes and opening up new avenues in the field.
| Original language | English |
|---|---|
| Article number | e202404874 |
| Journal | Angewandte Chemie - International Edition |
| Volume | 63 |
| Issue number | 30 |
| DOIs | |
| State | Published - Jul 22 2024 |
Funding
J. L. acknowledges the Fonds der Chemischen Industrie (FCI) for financial support. F. S. is grateful to the Federal Ministry of Education and Research (BMBF) for funding within the project MELLi (03XP0447). This work was partially supported by BASF SE. V. B. acknowledges DESY (Hamburg, Germany), a member of the Helmholtz Association (HGF), for the provision of experimental facilities. Parts of this research were carried out at beamline P02.1, PETRA III. This work is based on experiments performed at the Swiss spallation neutron source SINQ, Paul Scherrer Institute (PSI), Villigen, Switzerland (proposal no. 20051234) and PEARL neutron source, Delft University of Technology. The authors thank Dr. Denis Cheptiakov for assistance during the NPD measurements. Open Access funding enabled and organized by Projekt DEAL.
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