4.8 Article

Cation Disorder and Large Tetragonal Supercell Ordering in the Li-Rich Argyrodite Li7Zn0.5SiS6

期刊

CHEMISTRY OF MATERIALS
卷 34, 期 9, 页码 4073-4087

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.2c00320

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资金

  1. UK Engineering and Physical Sciences Research Council (EPSRC) [EP/N004884]
  2. ISCF Faraday Challenge project SOLBAT -The Solid-State (Li or Na) Metal-Anode Battery [FIRG007]
  3. University of Liverpool

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A tetragonal argyrodite material, Li7Zn0.5SiS6, with more than 7 mobile cations has been successfully synthesized through solid state synthesis and exploration of phase diagram. The crystal structure of Li7Zn0.5SiS6 has been determined and it undergoes a transition from ordered structure to disordered structure at high temperature. The material has multiple types of Li sites and the incorporation of Zn2+ affects the Li distribution. This study expands our understanding of structure-property relationships in argyrodite materials.
A tetragonal argyrodite with >7 mobile cations, Li7Zn0.5SiS6, is experimentally realized for the first time through solid state synthesis and exploration of the Li-Zn-Si-S phase diagram. The crystal structure of Li7Zn0.5SiS6 was solved ab initio from high-resolution X-ray and neutron powder diffraction data and supported by solid-state NMR. Li7Zn0.5SiS6 adopts a tetragonal I4 structure at room temperature with ordered Li and Zn positions and undergoes a transition above 411.1 K to a higher symmetry disordered F43m structure more typical of Li-containing argyrodites. Simultaneous occupation of four types of Li site (T5, T5a, T2, T4) at high temperature and five types of Li site (T5, T2, T4, T1, and a new trigonal planar T2a position) at room temperature is observed. This combination of sites forms interconnected Li pathways driven by the incorporation of Zn2+ into the Li sublattice and enables a range of possible jump processes. Zn2+ occupies the 48h T5 site in the high-temperature F43m structure, and a unique ordering pattern emerges in which only a subset of these T5 sites are occupied at room temperature in I4 Li7Zn0.5SiS6. The ionic conductivity, examined via AC impedance spectroscopy and VT-NMR, is 1.0(2) x 10(-7) S cm(-1) at room temperature and 4.3(4) x 10(-4) S cm(-1) at 503 K. The transition between the ordered I4 and disordered F43m structures is associated with a dramatic decrease in activation energy to 0.34(1) eV above 411 K. The incorporation of a small amount of Zn2+ exercises dramatic control of Li order in Li7Zn0.5SiS6 yielding a previously unseen distribution of Li sites, expanding our understanding of structure-property relationships in argyrodite materials.

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