Du Peng-Hu, Zhang Cunzhi, Sun Jie, Li Tingwei, Sun Qiang
School of Materials Science and Engineering, Peking University, Beijing100871, China.
Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois60637, United States.
ACS Appl Mater Interfaces. 2022 Oct 26;14(42):47882-47891. doi: 10.1021/acsami.2c14435. Epub 2022 Oct 14.
Superatom-based superionic conductors are of current interest due to their promising applications in solid-state electrolytes for rechargeable batteries. However, much less attention has been paid to their thermal properties, which are vital for safety and performance. Motivated by the recent synthesis of superatom-based superionic conductor NaOBH consisting of superhalogen cluster BH, we systematically investigate its lattice dynamics and thermal conductivity using the density functional theory combined with a self-consistent phonon approach. We reveal the bonding hierarchy features by studying the electron localization function and potential energy surface and further unveil the rattling effect of the BH superatom, which introduces strong quartic anharmonicity and induces soft phonon modes in low temperatures by assisting Na displacements, thus calling for the necessity of quartic renormalization and four-phonon scattering in calculating the lattice thermal conductivity. We find that the contribution of four-phonon processes to the lattice thermal conductivity increases from 13 to 32% when the temperature rises from 200 to 400 K. At room temperature (300 K), the phonon scattering phase space is enlarged by 133% due to the four-phonon interactions, and the lattice thermal conductivity is evaluated to be 5.34 W/mK, reduced by 24% as compared with a value of 6.99 W/mK involving three-phonon scattering only. These findings provide a better understanding of the lattice stability and thermal transport properties of superionic conductor NaOBH, shedding light on the role of strong quartic anharmonicity played in superatom-based materials.
基于超原子的超离子导体因其在可充电电池固态电解质中的应用前景而受到关注。然而,人们对其热性质的关注却少得多,而热性质对安全性和性能至关重要。受近期合成的由超卤素簇BH组成的基于超原子的超离子导体NaOBH的启发,我们使用密度泛函理论结合自洽声子方法系统地研究了其晶格动力学和热导率。我们通过研究电子定域函数和势能面揭示了键合层次特征,并进一步揭示了BH超原子的晃动效应,该效应引入了强四次非谐性,并通过协助Na位移在低温下诱导软声子模式,因此在计算晶格热导率时需要进行四次重整化和四声子散射。我们发现,当温度从200 K升至400 K时,四声子过程对晶格热导率的贡献从13%增加到32%。在室温(300 K)下,由于四声子相互作用,声子散射相空间扩大了133%,晶格热导率估计为5.34 W/mK,与仅涉及三声子散射时的6.99 W/mK相比降低了24%。这些发现有助于更好地理解超离子导体NaOBH的晶格稳定性和热输运性质,阐明了强四次非谐性在基于超原子的材料中所起的作用。