离子
扩散
单独一对
材料科学
化学物理
结晶学
原子物理学
化学
物理
热力学
分子
有机化学
作者
Kshitij Srivastava,César Menéndez Muñiz,Tapasendra Adhikary,G. P. Das,Nicholas M. Bedford,Kondo‐François Aguey‐Zinsou
标识
DOI:10.1021/acsaem.4c02634
摘要
Sodium (Na)-based batteries relying on solid-state electrolytes hold the potential to transform energy storage across various commercial applications. Although the ideal solid-state electrolyte has yet to be discovered, borohydrides have emerged as promising candidates. In particular, experimental studies have shown that Na 2 (BH 4 )(NH 2 ), a sodium borohydride (NaBH 4 ) derivative, exhibits promising Na + conductivity in the order of 10 –4 S cm –1 at 90 °C because of the naturally occurring vacant sites in its antiperovskite α-phase structure. Our computational study confirms the stability of the antiperovskite structure and identifies a second highly conductive γ phase, which may be stable at lower temperatures compared to the previously reported α-Na 2 (BH 4 )(NH 2 ). The combination of phonon dispersion and crystallographic characterization indicates that this γ-phase is more stable than the α-phase. It is 15 meV/f.u. lower in energy compared to the α-phase, making it the ground state at zero temperature. Additionally, this work highlights the role of both [BH 4 ] − and [NH 2 ] − units in the diffusion mechanism as well as the crucial role of [NH 2 ] − lone pairs in leading to a fast Na + conductor. The latter provides additional grounds for designing advanced ionic conductors.
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