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Understanding the Origin of Enhanced Li-Ion Transport in Nanocrystalline Argyrodite-Type LiPSI. | LitMetric

Understanding the Origin of Enhanced Li-Ion Transport in Nanocrystalline Argyrodite-Type LiPSI.

Chem Mater

Institute for Chemistry and Technology of Materials, Christian Doppler Laboratory for Lithium Batteries, Graz University of Technology (NAWI Graz), Stremayrgasse 9, 8010 Graz, Austria.

Published: June 2020

Argyrodite-type LiPSX (X = Cl, Br) compounds are considered to act as powerful ionic conductors in next-generation all-solid-state lithium batteries. In contrast to LiPSBr and LiPSCl compounds showing ionic conductivities on the order of several mS cm, the iodine compound LiPSI turned out to be a poor ionic conductor. This difference has been explained by anion site disorder in LiPSBr and LiPSCl leading to facile through-going, that is, long-range ion transport. In the structurally ordered compound, LiPSI, long-range ion transport is, however, interrupted because the important intercage Li jump-diffusion pathway, enabling the ions to diffuse over long distances, is characterized by higher activation energy than that in the sibling compounds. Here, we introduced structural disorder in the iodide by soft mechanical treatment and took advantage of a high-energy planetary mill to prepare nanocrystalline LiPSI. A milling time of only 120 min turned out to be sufficient to boost ionic conductivity by 2 orders of magnitude, reaching σ = 0.5 × 10 S cm. We followed this noticeable increase in ionic conductivity by broad-band conductivity spectroscopy and Li nuclear magnetic relaxation. X-ray powder diffraction and high-resolution Li, P MAS NMR helped characterize structural changes and the extent of disorder introduced. Changes in attempt frequency, activation entropy, and charge carrier concentration seem to be responsible for this increase.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7304077PMC
http://dx.doi.org/10.1021/acs.chemmater.0c01367DOI Listing

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