On the Discrepancy between Local and Average Structure in the Fast Na+ Ionic Conductor Na2.9Sb0.9W0.1S4

Maus, Oliver; Agne, Matthias T.; Fuchs, Till; Till, Paul S.; Wankmiller, Björn; Gerdes, Josef Maximilian; Sharma, Rituraj; Heere, Michael; Jalarvo, Niina; Yaffe, Omer; Hansen, Michael Ryan; Zeier, Wolfgang G.

Research article (journal) | Peer reviewed

Abstract

Aliovalent substitution is a common strategy to improve the ionic conductivity of solid electrolytes for solid-state batteries. The substitution of SbS43- by WS42- in Na2.9Sb0.9W0.1S4 leads to a very high ionic conductivity of 41 mS cm-1 at room temperature. While pristine Na3SbS4 crystallizes in a tetragonal structure, the substituted Na2.9Sb0.9W0.1S4 crystallizes in a cubic phase at room temperature based on its X-ray diffractogram. Here, we show by performing pair distribution function analyses and static single-pulse 121Sb NMR experiments that the short-range order of Na2.9Sb0.9W0.1S4 remains tetragonal despite the change in the Bragg diffraction pattern. Temperature-dependent Raman spectroscopy revealed that changed lattice dynamics due to the increased disorder in the Na+ substructure leads to dynamic sampling causing the discrepancy in local and average structure. While showing no differences in the local structure, compared to pristine Na3SbS4, quasi-elastic neutron scattering and solid-state 23Na nuclear magnetic resonance measurements revealed drastically improved Na+ diffusivity and decreased activation energies for Na2.9Sb0.9W0.1S4. The obtained diffusion coefficients are in very good agreement with theoretical values and long-range transport measured by impedance spectroscopy. This work demonstrates the importance of studying the local structure of ionic conductors to fully understand their transport mechanisms, a prerequisite for the development of faster ionic conductors.

Details about the publication

JournalJournal of the American Chemical Society (J. Am. Chem. Soc.)
Volume145
Issue13
Page range7147-7158
StatusPublished
Release year2023
KeywordsActivation energy; Antimony compounds; Crystal lattices; Distribution functions; Ionic conduction in solids; Ionic conductivity; Neutron scattering; Nuclear magnetic resonance spectroscopy; Sodium compounds; Solid electrolytes; Solid-State Batteries; Tungsten compounds

Authors from the University of Münster

Gerdes, Josef Maximilian
Hansen, Michael Ryan
Maus, Oliver Marcel
Till, Paul Simon
Wankmiller, Björn
Zeier, Wolfgang

Projects the publication originates from

Duration: 01/07/2020 - 31/10/2030
Funded by: Federal Ministry of Culture and Science of the Federal State of North Rhine-Westphalia, PowerCo SE
Type of project: Individual project