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The superatomic state beyond conventional magic numbers: Ligated metal chalcogenide superatoms

超原子 硫族元素 硫系化合物 纳米技术 星团(航天器) 化学 化学物理 价(化学) 电子结构 价电子 材料科学 计算化学 结晶学 计算机科学 物理 电子 有机化学 量子力学 程序设计语言
作者
Shiv N. Khanna,Arthur C. Reber,Dinesh Bista,Turbasu Sengupta,Ryan Lambert
出处
期刊:Journal of Chemical Physics [American Institute of Physics]
卷期号:155 (12): 120901-120901 被引量:18
标识
DOI:10.1063/5.0062582
摘要

The field of cluster science is drawing increasing attention due to the strong size and composition-dependent properties of clusters and the exciting prospect of clusters serving as the building blocks for materials with tailored properties. However, identifying a unifying central paradigm that provides a framework for classifying and understanding the diverse behaviors is an outstanding challenge. One such central paradigm is the superatom concept that was developed for metallic and ligand-protected metallic clusters. The periodic electronic and geometric closed shells in clusters result in their properties being based on the stability they gain when they achieve closed shells. This stabilization results in the clusters having a well-defined valence, allowing them to be classified as superatoms—thus extending the Periodic Table to a third dimension. This Perspective focuses on extending the superatomic concept to ligated metal–chalcogen clusters that have recently been synthesized in solutions and form assemblies with counterions that have wide-ranging applications. Here, we illustrate that the periodic patterns emerge in the electronic structure of ligated metal-chalcogenide clusters. The stabilization gained by the closing of their electronic shells allows for the prediction of their redox properties. Further investigations reveal how the selection of ligands may control the redox properties of the superatoms. These ligated clusters may serve as chemical dopants for two-dimensional semiconductors to control their transport characteristics. Superatomic molecules of multiple metal–chalcogen superatoms allow for the formation of nano-p–n junctions ideal for directed transport and photon harvesting. This Perspective outlines future developments, including the synthesis of magnetic superatoms.
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