(Ro)vibrational Spectroscopic Constants, Lifetime and QTAIM Evaluation of Fullerene Dimers Stability

Molecules. 2023 Jun 27;28(13):5023. doi: 10.3390/molecules28135023.

Abstract

The iconic caged shape of fullerenes gives rise to a series of unique chemical and physical properties; hence a deeper understanding of the attractive and repulsive forces between two buckyballs can bring detrimental information about the structural stability of such complexes, providing significant data applicable for several studies. The potential energy curves for the interaction of multiple van der Waals buckyball complexes with increasing mass were theoretically obtained within the DFT framework at ωB97xD/6-31G(d) compound model. These potential energy curves were employed to estimate the spectroscopic constants and the lifetime of the fullerene complexes with the Discrete Variable Representation and with the Dunham approaches. It was revealed that both methods are compatible in determining the rovibrational structure of the dimers and that they are genuinely stable, i.e., long-lived complexes. To further inquire into the nature of such interaction, Bader's QTAIM approach was applied. QTAIM descriptors indicate that the interactions of these closed-shell systems are dominated by weak van der Waals forces. This non-covalent interaction character was confirmed by the RDG analysis scheme. Indirectly, QTAIM also allowed us to confirm the stability of the non-covalent bonded fullerene dimers. Our lifetime calculations have shown that the studied dimers are stable for more than 1 ps, which increases accordingly with the number of carbon atoms.

Keywords: DVR; Dunham; QTAIM; fullerene dimers; lifetime; spectroscopic properties.

MeSH terms

  • Carbon
  • Fullerenes* / chemistry
  • Physical Phenomena
  • Spectrum Analysis

Substances

  • Fullerenes
  • Carbon

Grants and funding

This research received financial support from the following Brazilian agencies: CNPq, CAPES, FAPEG, and Edital DPI/DPG/BCE n. 01/2023. D.A.S.F. acknowledges the financial support from the Edital DPI-UnB No. 04/2019, Edital Interno IF 0001/2022, from CNPq (grants 305975/2019-6, and 420836/2018-7) and FAP-DF (grants 193.001.596/2017 and 193-00001220/2021-37). We thank the computer support from LaMCAD/UFG. L.R. acknowledges the financial support from the Edital/Convocatória n. 21/2022, Termo de Fomento nº 4529739, processo SEI nº 202200020021129. R.A.L.S. acknowledges the support of Federal Institute of Education, Science and Technology of Goiás (IFG), Câmpus Jataí.