Issue 28, 2021

The complex between molecular oxygen and an organic molecule: modeling optical transitions to the intermolecular charge-transfer state

Abstract

The collision complex between the ground electronic state of an organic molecule, M, and ground state oxygen, O2(X3Σg), can absorb light to produce an intermolecular charge transfer (CT) state, often represented simply as the M radical cation, M+˙, paired with the superoxide radical anion, O2˙. Aspects of this transition have been the subject of numerous studies for ∼70 years, many of which address fundamental concepts in chemistry and physics. We now examine the extent to which the combination of Molecular Dynamics simulations and electronic structure response methods can model transitions to the toluene–O2 CT state. To account for the experimental spectra, we consider (a) the distribution of toluene–O2 geometries that contribute to the transitions, (b) a quantitative description of intermolecular CT, and (c) oxygen-induced local transitions in toluene that complement the CT transitions, specifically transitions that populate toluene triplet states. We find that the latter oxygen-induced local transitions play a prominent role on the long wavelength side of the spectrum commonly attributed to the intermolecular CT transition. Our calculations provide a new perspective on the seminal discussion between R. S. Mulliken and D. F. Evans on the nature of O2-dependent transitions in organic molecules, and bode well for modeling transitions to excited states with CT character in noncovalent weakly-bonded molecular complexes.

Graphical abstract: The complex between molecular oxygen and an organic molecule: modeling optical transitions to the intermolecular charge-transfer state

Supplementary files

Article information

Article type
Paper
Submitted
21 Apr 2021
Accepted
28 Jun 2021
First published
28 Jun 2021

Phys. Chem. Chem. Phys., 2021,23, 15038-15048

The complex between molecular oxygen and an organic molecule: modeling optical transitions to the intermolecular charge-transfer state

F. Thorning, K. Strunge, F. Jensen and P. R. Ogilby, Phys. Chem. Chem. Phys., 2021, 23, 15038 DOI: 10.1039/D1CP01738A

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