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金属六硼化物中的电子计数与高压相变

Electron Counting and High-Pressure Phase Transformations in Metal Hexaborides.

作者信息

Morgan Harry W T, Alexandrova Anastassia N

机构信息

Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, California90095-1569, United States.

出版信息

Inorg Chem. 2022 Nov 21;61(46):18701-18709. doi: 10.1021/acs.inorgchem.2c03190. Epub 2022 Nov 9.

Abstract

Pressure-induced structural transitions of the alkaline earth hexaborides, CaB, SrB, and BaB, are studied theoretically using electron counting rules and density functional theory calculations. We demonstrate the applicability of gas-phase borane electron counting methods to solid-state metal borides under pressure and validate the assumptions of the rules by density functional theory (DFT) calculations. All three compounds share ambient-pressure and high-pressure structures, but BaB differs from CaB and SrB at intermediate pressures. The unique BaB phase is shown to break electron counting rules, while all other phases obey them. This anomaly is resolved by DFT, which reveals B-Ba covalency and unusual B-B π bonding under pressure. The relationships between structure and bonding can help us to understand the exotic behavior of lanthanide hexaborides and design new borides with desirable properties. Developing electron counting procedures for solids will enhance materials discovery efforts with chemical intuition.

摘要

利用电子计数规则和密度泛函理论计算,从理论上研究了碱土金属六硼化物CaB、SrB和BaB的压力诱导结构转变。我们证明了气相硼烷电子计数方法在高压下对固态金属硼化物的适用性,并通过密度泛函理论(DFT)计算验证了这些规则的假设。所有这三种化合物都具有常压和高压结构,但BaB在中间压力下与CaB和SrB不同。独特的BaB相显示出违反电子计数规则,而所有其他相则遵循这些规则。密度泛函理论解决了这一异常现象,该理论揭示了压力下B-Ba共价性和不寻常的B-B π键。结构与键合之间的关系有助于我们理解镧系六硼化物的奇异行为,并设计出具有理想性能的新型硼化物。开发用于固体的电子计数程序将增强基于化学直觉的材料发现工作。

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