Two-dimensional Li+ ionic hopping in Li3InCl6 as revealed by diffusion-induced nuclear spin relaxation

Florian Stainer and H. Martin R. Wilkening
Phys. Rev. B 109, 174304 – Published 7 May 2024

Abstract

Ternary Li halides, such as Li3MeX6 with, e.g., Me = In, Sc, Y and X = Cl, Br, are the center of attention for battery applications, as these materials might serve as ionic electrolytes. To fulfill their function, such electrolytes must have an extraordinarily high ionic Li+ conductivity. Layer-structured Li3InCl6 represents such a candidate; however, understanding the origin of the rapid Li+ exchange processes needs further investigation. Spatially restricted, that is, low-dimensional particle diffusion, might offer an explanation for fast ion dynamics. It is, however, challenging to provide evidence for 2D diffusion at the atomic scale when dealing with polycrystalline powder samples. Here, we use purely diffusion-induced Li7 nuclear magnetic spin relaxation to detect anomalies that unambiguously show that 2D Li diffusion is chiefly responsible for the dynamic processes in a Li3InCl6 powder sample the present paper focusses on. The change of the spin-lattice relaxation rate 1/T1 as a function of inverse temperature 1/T passes through a rate peak that strictly follows asymmetric behavior. This feature is in excellent agreement with the model of P. M. Richards [Solid State Commun. 25, 1019 (1978)], suggesting a logarithmic spectral density function J to fully describe 2D diffusion. Hence, Li3InCl6 belongs to the very rare examples for which 2D Li+ diffusion has been immaculately verified.

  • Figure
  • Figure
  • Received 10 October 2023
  • Revised 22 March 2024
  • Accepted 22 April 2024

DOI:https://doi.org/10.1103/PhysRevB.109.174304

©2024 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied PhysicsEnergy Science & Technology

Authors & Affiliations

Florian Stainer and H. Martin R. Wilkening*

  • Graz University of Technology, Institute of Chemistry and Technology of Materials (NAWI Graz), Stremayrgasse 9, 8010 Graz, Austria

  • *wilkening@tugraz.at

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Vol. 109, Iss. 17 — 1 May 2024

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