论文标题

拓扑量子化学在电气中的应用

Application of topological quantum chemistry in electrides

论文作者

Nie, Simin, Qian, Yuting, Gao, Jiacheng, Fang, Zhong, Weng, Hongming, Wang, Zhijun

论文摘要

最近开发的拓扑量子化学理论(TQC)在动量空间中的频段表示与真实空间中的轨道特征之间建立了密切的联系。它提供了一种诊断拓扑材料的有效方法,从而在筛选所有已知的非磁化合物后发现了许多拓扑材料。另一方面,它还可以有效揭示空间轨道字符,包括平均电荷中心和站点对称性字符。通过在第一原理计算中使用TQC理论与计算出的不可还原表示形式,我们证明,可以通过分析频带表示(BRS)来充分识别具有过量电子的电气,而这些电气无法以原子骨诱导的带状表示(ABR)表示。实际上,浮动带(由多余的电子形成)属于以空位为中心的“伪轨道”引起的BR。换句话说,事实证明,电气被证明是非常规的离子晶体,其中一组占用的频带不是ABR的总和,而是一定包含空位中的BR。 TQC理论提供了一种有希望的途径,可以追求更多的电气晶体中的电气候选物。

The recently developed theory of topological quantum chemistry (TQC) has built a close connection between band representations in momentum space and orbital characters in real space. It provides an effective way to diagnose topological materials, leading to the discovery of lots of topological materials after the screening of all known nonmagnetic compounds. On the other hand, it can also efficiently reveal spacial orbital characters, including average charge centers and site-symmetry characters. By using TQC theory with the computed irreducible representations in the first-principles calculations, we demonstrate that the electrides with excess electrons serving as anions at vacancies can be well identified by analyzing band representations (BRs), which cannot be expressed as a sum of atomic-orbital-induced band representations (aBRs). In fact, the floating bands (formed by the excess electrons) belong to the BRs induced from the "pseudo-orbitals" centered at vacancies. In other words, the electrides are proved to be unconventional ionic crystals, where a set of occupied bands is not a sum of aBRs but necessarily contains a BR from vacancies. The TQC theory provides a promising avenue to pursue more electride candidates in ionic crystals.

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