| Literature DB >> 33420012 |
Shenghan Gao1, Thibault Broux1, Susumu Fujii2, Cédric Tassel3, Kentaro Yamamoto4, Yao Xiao4, Itaru Oikawa5, Hitoshi Takamura5, Hiroki Ubukata1, Yuki Watanabe1, Kotaro Fujii6, Masatomo Yashima6, Akihide Kuwabara2, Yoshiharu Uchimoto4, Hiroshi Kageyama7.
Abstract
Most solid-state materials are composed of p-block anions, only in recent years the introduction of hydride anions (1s2) in oxides (e.g., SrVO2H, BaTi(O,H)3) has allowed the discovery of various interesting properties. Here we exploit the large polarizability of hydride anions (H-) together with chalcogenide (Ch2-) anions to construct a family of antiperovskites with soft anionic sublattices. The M3HCh antiperovskites (M = Li, Na) adopt the ideal cubic structure except orthorhombic Na3HS, despite the large variation in sizes of M and Ch. This unconventional robustness of cubic phase mainly originates from the large size-flexibility of the H- anion. Theoretical and experimental studies reveal low migration barriers for Li+/Na+ transport and high ionic conductivity, possibly promoted by a soft phonon mode associated with the rotational motion of HM6 octahedra in their cubic forms. Aliovalent substitution to create vacancies has further enhanced ionic conductivities of this series of antiperovskites, resulting in Na2.9H(Se0.9I0.1) achieving a high conductivity of ~1 × 10-4 S/cm (100 °C).Entities:
Year: 2021 PMID: 33420012 DOI: 10.1038/s41467-020-20370-2
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919