Gilmour J T A, Gaston N
The MacDiarmid Institute for Advanced Materials and Nanotechnology, The Department of Physics, The University of Auckland, Private Bag 92019, Auckland 1142, New Zealand.
Phys Chem Chem Phys. 2020 Feb 21;22(7):4051-4058. doi: 10.1039/c9cp05933d. Epub 2020 Feb 6.
The geometries and electronic structures of icosahedral A (A = Sc, Y; C = 0, ±1, ±2) clusters have been determined at a range of multiplicities at each cluster charge, using density functional theory methods. These clusters demonstrate a complex electronic structure which provides insight into the anomalously high magnetic moment of icosahedral group 3 clusters and further contextualises the role of transition metals and d-electrons within the superatomic model. Embedded deeply within the density of states for these clusters are typical superatom orbitals which are populated up to the 2S level. Above the 2S-state there are three states of apparent F symmetry, which are preferentially singly occupied, followed by an abundance of approximately degenerate P-, G-, D- and F-states at the Fermi energy, which are at most singly occupied. In spite of apparent angular symmetry and a nodal structure reminiscent of superatomic orbitals these states are actually formed from preferential overlap of the valence d-orbitals of the cluster atoms. This analysis was further contextualised through analysis of the Sc cluster, which shows a similar construction of Kohn-Sham states, but with the breaking of 5-fold symmetry along one of its Cartesian axes. Finally, this work clearly demonstrates the ability of d-electrons to give rise to superatomic orbitals is not just constrained by atomic species but also by the local environment of the atoms.
利用密度泛函理论方法,在每个团簇电荷的一系列多重度下,确定了二十面体A(A = Sc、Y;C = 0、±1、±2)团簇的几何结构和电子结构。这些团簇展现出复杂的电子结构,这为二十面体第3族团簇异常高的磁矩提供了见解,并进一步将过渡金属和d电子在超原子模型中的作用置于背景之中。在这些团簇的态密度中深深嵌入的是典型的超原子轨道,其填充至2S能级。在2S态之上有三个明显具有F对称性的态,优先被单占据,随后在费米能级处有大量近似简并的P、G、D和F态,最多被单占据。尽管这些态具有明显的角对称性和让人联想到超原子轨道的节点结构,但实际上它们是由团簇原子的价d轨道的优先重叠形成的。通过对Sc团簇的分析,进一步将这一分析置于背景之中,Sc团簇显示出类似的Kohn-Sham态结构,但沿其笛卡尔坐标轴之一的五重对称性被打破。最后,这项工作清楚地表明,d电子产生超原子轨道的能力不仅受原子种类的限制,还受原子局部环境的限制。