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Dynamics of Singlet Oxygen Molecule Trapped in Silica Glass Studied by Luminescence Polarization Anisotropy and Density Functional Theory

Authors :
Skuja, Linards
Smits, Krisjanis
Trukhin, Anatoly
Gahbauer, Florian
Ferber, Ruvin
Auzinsh, Marcis
Busaite, Laima
Razinkovas, Lukas
Mackoit-Sinkevičienė, Mažena
Alkauskas, Audrius
Source :
The Journal of Physical Chemistry - Part C; April 2020, Vol. 124 Issue: 13 p7244-7253, 10p
Publication Year :
2020

Abstract

The lowest excited electronic state of the O2molecule, a1Δg, the “singlet oxygen”, is of utmost importance for photochemistry and photobiology. For O2trapped in silica glass, the lifetime of this state and the associated a1Δg→ X3Σg–photoluminescence (PL) is the longest known for O2in any condensed medium at room temperature. We studied the temperature dependence, decay kinetics, and polarization anisotropy of this PL with 1064 nm excitation to the a1Δg(v= 1) state as well as with excitation to higher energies. PL at this excitation shows nonzero polarization anisotropy at 295 K, which increases with cooling to 14 K. At variance, excitation to higher energies yields depolarized PL. Polarization data indicate weak electric dipole character of the emission of the spin- and parity-forbidden a1Δg→ X3Σg–transition, enabled by O2–SiO2cage interactions. Density functional theory calculations indicate that at low temperatures the rotation of O2is partially or fully frozen even in large silica voids. As the temperature increases, PL is increasingly depolarized by libration movement of O2molecules. Analysis of O2optical absorption in optical fibers allows one to obtain the absorption cross sections of X → a and X → b transitions of O2in SiO2glass and to evaluate both radiative and nonradiative rates of a → X luminescence.

Details

Language :
English
ISSN :
19327447 and 19327455
Volume :
124
Issue :
13
Database :
Supplemental Index
Journal :
The Journal of Physical Chemistry - Part C
Publication Type :
Periodical
Accession number :
ejs52716869
Full Text :
https://doi.org/10.1021/acs.jpcc.9b11581