Häfner Michael, Bianchini Matteo
Faculty of Biology, Chemistry and Earth Sciences, Universität Bayreuth, Universitätsstrasse 30, 95447 Bayreuth, Germany.
Bavarian Center for Battery Technology (BayBatt), Universität Bayreuth, Weiherstrasse 26, 95448 Bayreuth, Germany.
J Phys Chem C Nanomater Interfaces. 2024 Nov 15;128(47):19978-19988. doi: 10.1021/acs.jpcc.4c05559. eCollection 2024 Nov 28.
NaAlCl is an established solid electrolyte in high-temperature Na-based battery systems, but its ionic conductivity is not sufficiently high for room-temperature applications. We employ density functional theory and thermodynamic corrections to evaluate the efficacy of various elements for substitution, utilizing on-the-fly machine-learned potentials to accelerate the required phonon calculations by 1 order of magnitude at a minor error of -0.7 ± 1.0 meV/atom. All investigated isovalent substitutions are favorable within 4 meV/atom, with potassium and silver as substitutes for sodium and gallium as a substitute for aluminum. The most promising aliovalent substitution was identified for Zn on the tieline between NaAlCl and NaZnCl. The structure of latter, with aluminum ions replacing zinc, yields a structure with separate layers for the differently charged cations and vacancies for potential Na conduction. Our investigation may pave the way for more reliable discovery of new Na conductors by inclusion of thermodynamic properties.
NaAlCl是高温钠基电池系统中一种成熟的固体电解质,但其离子电导率对于室温应用来说不够高。我们采用密度泛函理论和热力学校正来评估各种元素替代的效果,利用实时机器学习势将所需的声子计算加速1个数量级,误差为-0.7±1.0 meV/原子。所有研究的等价替代在4 meV/原子范围内都是有利的,钾和银替代钠,镓替代铝。在NaAlCl和NaZnCl之间的连线上,锌的替代被确定为最有前景的异价替代。后者的结构是铝离子取代锌,产生一种结构,其中不同电荷的阳离子有单独的层,还有潜在的钠传导空位。我们的研究可能通过纳入热力学性质为更可靠地发现新的钠导体铺平道路。