4.6 Article

Density functional theory study on optical and electronic properties of co-doped graphene quantum dots based on different nitrogen doping patterns

期刊

DIAMOND AND RELATED MATERIALS
卷 113, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.diamond.2021.108264

关键词

Graphene quantum dots; Heteroatom; Co-doping; Optical property; Electronic structure; Density functional theory

资金

  1. National Natural Science Foundation of China [52002198, 21776147, 21905153, 61604086]
  2. Qingdao Municipal Science and Technology Bureau [19-6-1-91-nsh]
  3. Project of Shandong Province Higher Educational Science and Technology Program [J17KA013]
  4. Chemcloudcomputing of National Supercomputing Center in Shenzhen (Shenzhen Cloud Computing Center)
  5. Malmstrom Endowment Fund at Hamline University

向作者/读者索取更多资源

Heteroatom co-doping is an effective way to tailor electronic structures of graphene quantum dots with synergistic effects and desirable properties. Different N-doping configurations can endow GQDs with a wide spectrum of new optical properties and electronic structures, providing valuable insights for understanding absorption mechanisms and electronic properties of heteroatom co-doped GQDs as well as achieving new applications with well-defined and desired properties.
Heteroatom doping, especially co-doping, is an effective way to tailor electronic structures of graphene quantum dots (GQDs) with synergistic effects and desirable properties. However, due to different synthesis methods, the widespread use of GQDs co-doped with heteroatoms is hindered by the poor understanding of their optical properties and mechanisms. In this work, co-doped GQDs based on three N-doping configurations are chosen to reveal underlying mechanisms of optical properties using density functional theory and time-dependent density functional theory calculations. Based on different N-doping patterns, B, P and S atoms can endow GQDs with a wide spectrum of new optical properties and electronic structures. The HOMO-LUMO gaps of N-doped GQDs with graphitic N, pyrrolic N, and pyridinic N are 0.77, 0.25 and 2.69 eV, respectively. In the co-doped GQDs, B, P and S containing functional groups cause low absorptions in the range of 400 to 800 nm and multiple absorption peaks at about 400 and 600 nm, while the N atom affects the position and intensity of prominent absorption peak according to three different N-doping patterns. The B atom forms sp(2) hybridization in the graphene lattice, while the P and S atoms transform the sp(2) hybridized carbon into the sp(3) state. It is anticipated that this work will provide valuable insights for understanding absorption mechanisms and electronic properties of heteroatom co-doped GQDs as well as achieving new applications with well-defined and desired properties.

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