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Forced Disorder in the Solid Solution Li3P-Li2S: A New Class of Fully Reduced Solid Electrolytes for Lithium Metal Anodes.
Szczuka, Conrad; Karasulu, Bora; Groh, Matthias F; Sayed, Farheen N; Sherman, Timothy J; Bocarsly, Joshua D; Vema, Sundeep; Menkin, Svetlana; Emge, Steffen P; Morris, Andrew J; Grey, Clare P.
  • Szczuka C; Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
  • Karasulu B; Institute of Energy and Climate Research (IEK-9), Forschungszentrum Jülich GmbH, 52425 Jülich, Germany.
  • Groh MF; Institute of Physical Chemistry, RWTH Aachen University, 52056 Aachen, Germany.
  • Sayed FN; Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
  • Sherman TJ; Department of Chemistry, University of Warwick, Gibbet Hill Road, Coventry CV4 7AL, U.K.
  • Bocarsly JD; Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
  • Vema S; Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
  • Menkin S; The Faraday Institution, Quad One, Harwell Campus, Didcot OX11 0RA, U.K.
  • Emge SP; Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
  • Morris AJ; Yusuf Hamied Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
  • Grey CP; The Faraday Institution, Quad One, Harwell Campus, Didcot OX11 0RA, U.K.
J Am Chem Soc ; 144(36): 16350-16365, 2022 Sep 14.
Article en En | MEDLINE | ID: mdl-36040461
ABSTRACT
All-solid-state batteries based on non-combustible solid electrolytes are promising candidates for safe energy storage systems. In addition, they offer the opportunity to utilize metallic lithium as an anode. However, it has proven to be a challenge to design an electrolyte that combines high ionic conductivity and processability with thermodynamic stability toward lithium. Herein, we report a new highly conducting solid solution that offers a route to overcome these challenges. The Li-P-S ternary was first explored via a combination of high-throughput crystal structure predictions and solid-state synthesis (via ball milling) of the most promising compositions, specifically, phases within the Li3P-Li2S tie line. We systematically characterized the structural properties and Li-ion mobility of the resulting materials by X-ray and neutron diffraction, solid-state nuclear magnetic resonance spectroscopy (relaxometry), and electrochemical impedance spectroscopy. A Li3P-Li2S metastable solid solution was identified, with the phases adopting the fluorite (Li2S) structure with P substituting for S and the extra Li+ ions occupying the octahedral voids and contributing to the ionic transport. The analysis of the experimental data is supported by extensive quantum-chemical calculations of both structural stability, diffusivity, and activation barriers for Li+ transport. The new solid electrolytes show Li-ion conductivities in the range of established materials, while their composition guarantees thermodynamic stability toward lithium metal anodes.