Abstract

In a molecule formed by two atoms, energy difference between bonding and antibonding orbitals depends on distance between the two atoms. However, exploring molecular orbitals of two natural atoms with tunable distance has remained an outstanding experimental challenge. Graphene quantum dots can be viewed as relativistic artificial atoms, thus offering a unique platform to study molecular physics. Here, through scanning tunneling microscope, we create and directly visualize the formation process of relativistic artificial molecules based on two coupled graphene quantum dots with tunable distance. Our study indicates that energy difference between the bonding and antibonding orbitals of the lowest quasibound state increases linearly with inverse distance between the two graphene quantum dots due to the relativistic nature of the artificial molecule. For quasibound states with higher orbital momenta, the coupling between these states leads to half-energy spacing of the confined states because the length of the molecular-like orbit is approximately twice that of the atomic-like orbit. Evolution from ring-like whispering-gallery modes in the artificial atoms to figure-eight orbitals in the artificial molecules is directly imaged. The ability to resolve the coupling and orbitals of the relativistic artificial molecule at the nanoscale level yields insights into the behavior of quantum-relativistic matter.

Graphene quantum dots have electronic structures resembling these of atoms. Here, the authors use two of these compounds to construct artificial molecules and study their electronic properties at tunable distances.

Details

Title
Relativistic artificial molecule of two coupled graphene quantum dots at tunable distances
Author
Zhou, Xiao-Feng 1   VIAFID ORCID Logo  ; Zhuang, Yu-Chen 2 ; Zhang, Mo-Han 1 ; Sheng, Hao 1 ; Sun, Qing-Feng 3   VIAFID ORCID Logo  ; He, Lin 1   VIAFID ORCID Logo 

 Beijing Normal University, Center for Advanced Quantum Studies, School of Physics and Astronomy, Beijing, China (GRID:grid.20513.35) (ISNI:0000 0004 1789 9964); Ministry of Education, Key Laboratory of Multiscale Spin Physics, Beijing, China (GRID:grid.454828.7) (ISNI:0000 0004 0638 8050) 
 Peking University, International Center for Quantum Materials, School of Physics, Beijing, China (GRID:grid.11135.37) (ISNI:0000 0001 2256 9319) 
 Peking University, International Center for Quantum Materials, School of Physics, Beijing, China (GRID:grid.11135.37) (ISNI:0000 0001 2256 9319); Hefei National Laboratory, Hefei, China (GRID:grid.59053.3a) (ISNI:0000000121679639) 
Pages
8786
Publication year
2024
Publication date
2024
Publisher
Nature Publishing Group
e-ISSN
20411723
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
3115237155
Copyright
© The Author(s) 2024. This work is published under http://creativecommons.org/licenses/by-nc-nd/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.