Abbas Ghulam, Zhao Songtao, Li Zhenyu, Yang Jinlong
Hefei National Laboratory for Physical Sciences at the Microscale, Synergetic Innovation Center of Quantum Information & Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
ACS Omega. 2018 Sep 26;3(9):11966-11971. doi: 10.1021/acsomega.8b01575. eCollection 2018 Sep 30.
By considering a group of atoms as a whole, the superatom state concept has been proposed to understand complex chemical systems. Superatom states distributed in free space are important in determining the interactions between superatoms and also the reactions of a superatom system with other external molecules. Unfortunately, all free-space superatom states reported to date are unoccupied states, which strongly limit their applications. In this study, we predict that both occupied and unoccupied free-space superatom states exist in an encapsulated CaN nanotube. In this composite system, the inner CaN nanotube provides anionic electrons in free space inside the tube, which form occupied s-, p-, and d-like superatom states. The outer carbon nanotube layer provides an effective protection for these free-space superatom states from the ambient environment. Such protected superatom states with flexible occupation statuses are expected to have a great potential in various application fields including catalysis and electronics.
通过将一组原子视为一个整体,提出了超原子态概念以理解复杂的化学体系。分布在自由空间中的超原子态对于确定超原子之间的相互作用以及超原子体系与其他外部分子的反应很重要。不幸的是,迄今为止报道的所有自由空间超原子态都是未占据态,这严重限制了它们的应用。在本研究中,我们预测在封装的CaN纳米管中存在占据态和未占据态的自由空间超原子态。在这个复合体系中,内部的CaN纳米管在管内的自由空间中提供阴离子电子,这些电子形成占据的s-、p-和d-类超原子态。外部的碳纳米管层为这些自由空间超原子态提供了对周围环境的有效保护。这种具有灵活占据状态的受保护超原子态有望在包括催化和电子学在内的各种应用领域中具有巨大潜力。