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Na 2.5 Cr 0.5 Zr 0.5 Cl 6 : A New Halide-Based Fast Sodium-Ion Conductor.

Likuo WangZhenyou SongXiaobing LouYuwei ChenTengrui WangZhongqiang WangHuaican ChenWen YinMaxim AvdeevWang Hay KanBingwen HuWei Luo
Published in: Small (Weinheim an der Bergstrasse, Germany) (2024)
All-solid-state batteries employing solid electrolytes (SEs) have received widespread attention due to their high safety. Recently, lithium halides are intensively investigated as promising SEs while their sodium counterparts are less studied. Herein, a new sodium-ion conductor with a chemical formula of Na 2.5 Cr 0.5 Zr 0.5 C l6 is reported, which exhibits high room temperature ionic conductivity of 0.1 mS cm -1 with low migration energy barrier of ≈0.41 eV. Na 2.5 Cr 0.5 Zr 0.5 C l6 has a Fm-3m structure with 41.67 mol.% of cationic vacancies owing to the occupation of Cr (8.33 mol.%) and Zr (8.33 mol.%) ions at Na sites. Supercell calculations show that the lowest columbic energy configuration has Cr/Zr/V (where V is the vacancy) clusters in the structure. Nonetheless, the clusters have mixed effects on the sodium ion conduction pathway, based on the Bond Valence Energy Landscape calculation. A global 3D Na-ion transport percolation network can be revealed in the lowest energy supercell. Effective pathways are connected through the NaCl 6 and VCl 6 nodes. Besides, Raman spectroscopy and 23 Na solid-state nuclear magnetic resonance spectroscopy further prove the tunable structure of the SEs with different Cr to Zr ratios. The optimization between the concentration of Na + and vacancies is crucial to create an improved network of Na + diffusion channels.
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