» Articles » PMID: 31642663

New Family of Argyrodite Thioantimonate Lithium Superionic Conductors

Overview
Journal J Am Chem Soc
Specialty Chemistry
Date 2019 Oct 24
PMID 31642663
Citations 31
Authors
Affiliations
Soon will be listed here.
Abstract

We report on a new family of argyrodite lithium superionic conductors, as solid solutions LiMSbSI (M = Si, Ge, Sn), that exhibit superionic conductivity. These represent the first antimony argyrodites to date. Exploration of the series using a combination of single crystal X-ray and synchrotron/neutron powder diffraction, combined with impedance spectroscopy, reveals that an optimal degree of substitution (), and substituent induces slight S/I anion site disorder-but more importantly drives Li cation site disorder. The additional, delocalized Li-ion density is located in new high energy lattice sites that provide intermediate interstitial positions (local minima) for Li diffusion and activate concerted ion migration, leading to a low activation energy of 0.25 eV. Excellent room temperature ionic conductivity of 14.8 mS·cm is exhibited for cold-pressed pellets-up to 24 mS·cm for sintered pellets-among the highest values reported to date. This enables all-solid-state battery prototypes that exhibit promising properties. Furthermore, even at -78 °C, suitable bulk ionic conductivity of the electrolyte is retained (0.25 mS·cm). Selected thioantimonate iodides demonstrate good compatibility with Li metal, sustaining over 1000 h of Li stripping/plating at current densities up to 0.6 mA·cm. The significantly enhanced Li ion conduction and lowered activation energy barrier with increasing site disorder reveals an important strategy toward the development of superionic conductors.

Citing Articles

Characterizing Electrode Materials and Interfaces in Solid-State Batteries.

Alsac E, Nelson D, Yoon S, Cavallaro K, Wang C, Sandoval S Chem Rev. 2025; 125(4):2009-2119.

PMID: 39903474 PMC: 11869192. DOI: 10.1021/acs.chemrev.4c00584.


Compositional flexibility in irreducible antifluorite electrolytes for next-generation battery anodes.

Landgraf V, Tu M, Cheng Z, Vasileiadis A, Wagemaker M, Famprikis T J Mater Chem A Mater. 2024; 13(5):3562-3574.

PMID: 39723171 PMC: 11665506. DOI: 10.1039/d4ta07521h.


Synthesis, crystal structure and properties of μ-tetra-thio-anti-monato-bis-[(cyclam)zinc(II)] perchlorate 0.8-hydrate.

Nather C, Luhmann H, Bensch W Acta Crystallogr E Crystallogr Commun. 2024; 80(Pt 11):1151-1156.

PMID: 39712171 PMC: 11660490. DOI: 10.1107/S2056989024009356.


Revealing the Local Structure and Dynamics of the Solid Li Ion Conductor LiPO.

Duff B, Corti L, Turner B, Han G, Daniels L, Rosseinsky M Chem Mater. 2024; 36(16):7703-7718.

PMID: 39220613 PMC: 11360135. DOI: 10.1021/acs.chemmater.4c00727.


Understanding the role of aliovalent cation substitution on the li-ion diffusion mechanism in LiPSiSBr argyrodites.

Schwietert T, Gautam A, Lavrinenko A, Drost D, Famprikis T, Wagemaker M Mater Adv. 2024; 5(5):1952-1959.

PMID: 38444932 PMC: 10911230. DOI: 10.1039/d3ma01042b.