» Articles » PMID: 21650200

Ab Initio Studies of Aromatic Excimers Using Multiconfiguration Quasi-degenerate Perturbation Theory

Overview
Journal J Phys Chem A
Specialty Chemistry
Date 2011 Jun 10
PMID 21650200
Citations 12
Authors
Affiliations
Soon will be listed here.
Abstract

The aromatic excimers of benzene, naphthalene, anthracene, pyrene, and perylene are systematically investigated using the multiconfiguration quasi-degenerate perturbation theory (MCQDPT) method, which is one of high-level ab initio quantum chemical methods. The reference configuration space for MCQDPT is carefully designed for an appropriate description of the target electronic state with a tractable computational cost. The dimers with eclipsed parallel arrangement are investigated. The basis set dependence of the selected spectroscopic parameters is examined for the benzene and naphthalene dimers, and that of the excimer binding energy is found to be significant. In contrast, the equilibrium intermolecular distance and excimer fluorescence energy are less sensitive to the size of the basis sets used, and they agree with the corresponding experimental values, even with a nonextensive basis set size. The calculated spectroscopic parameters for anthracene, pyrene, and perylene dimers are also in good agreement with the experimental results. The electronic properties of the excimers are discussed in relation to those of the corresponding monomers. The wave functions of the excimers are analyzed in detail to clarify the origin of the attractive nature between the two monomers.

Citing Articles

Eclipsed and Twisted Excimers of Pyrene and 2-Azapyrene: How Nitrogen Substitution Impacts Excimer Emission.

Dai Y, Rambaldi F, Negri F Molecules. 2024; 29(2).

PMID: 38276585 PMC: 11154402. DOI: 10.3390/molecules29020507.


Noncovalently bound excited-state dimers: a perspective on current time-dependent density functional theory approaches applied to aromatic excimer models.

Hancock A, Goerigk L RSC Adv. 2023; 13(51):35964-35984.

PMID: 38090083 PMC: 10712016. DOI: 10.1039/d3ra07381e.


Intermolecular Interactions and Charge Resonance Contributions to Triplet and Singlet Exciton States of Oligoacene Aggregates.

Dai Y, Calzolari A, Zubiria-Ulacia M, Casanova D, Negri F Molecules. 2023; 28(1).

PMID: 36615311 PMC: 9822017. DOI: 10.3390/molecules28010119.


Hot exciton transition for organic light-emitting diodes: tailoring excited-state properties and electroluminescence performances of donor-spacer-acceptor molecules.

Jayabharathi J, Panimozhi S, Thanikachalam V RSC Adv. 2022; 8(65):37324-37338.

PMID: 35557816 PMC: 9088966. DOI: 10.1039/c8ra07891b.


Noncovalently bound excited-state dimers: a perspective on current time-dependent density functional theory approaches applied to aromatic excimer models.

Hancock A, Goerigk L RSC Adv. 2022; 12(21):13014-13034.

PMID: 35520129 PMC: 9062889. DOI: 10.1039/d2ra01703b.