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Phenylazopyridine as Switch in Photochemical Reactions. A Detailed Computational Description of the Mechanism of Its Photoisomerization.

Authors :
Casellas, Josep
Alcover-Fortuny, Gerard
de Graaf, Coen
Reguero, Mar
Source :
Materials (1996-1944). Dec2017, Vol. 10 Issue 12, p1342. 16p. 6 Diagrams, 5 Charts, 2 Graphs.
Publication Year :
2017

Abstract

Azo compounds are organic photochromic systems that have the possibility of switching between cis and trans isomers under irradiation. The different photochemical properties of these isomers make azo compounds into good light-triggered switches and their significantly different geometries make them very interesting as components in molecular engines or mechanical switches. For instance, azo ligands are used in coordination complexes to trigger photoresponsive properties. The light-induced trans-to-cis isomerization of phenylazopyridine (PAPy) plays a fundamental role in the room-temperature switchable spin crossover of Ni-porphyrin derivatives. In this work, we present a computational study developed at the SA-CASSCF/CASPT2 level (State Averaged Complete Active Space Self Consistent Field/CAS second order Perturbation Theory) to elucidate the mechanism, up to now unknown, of the cis-trans photoisomerization of 3-PAPy. We have analyzed the possible reaction pathways along its lowest excited states, generated by excitation of one or two electrons from the lone pairs of the N atoms of the azo group (nazoπ8 2 and nazo 2π8 2 states), from a π delocalized molecular orbital (ππ8 state), or from the lone pair of the N atom of the pyridine moiety (npyπ8 state). Our results show that the mechanism proceeds mainly along the rotation coordinate in both the nazoπ8 and ππ8 excited states, although the nazo 2π8 2 state can also be populated temporarily, while the npyπ8 does not intervene in the reaction. For rotationally constrained systems, accessible paths to reach the cis minimum along planar geometries have also been located, again on the nazoπ8 and ππ8 potential energy surfaces, while the nazo 2π8 2 and npyπ8 states are not involved in the reaction. The relative energies of the different paths differ from those found for azobenzene in a previous work, so our results predict some differences between the reactivities of both compounds. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
19961944
Volume :
10
Issue :
12
Database :
Academic Search Index
Journal :
Materials (1996-1944)
Publication Type :
Academic Journal
Accession number :
126941343
Full Text :
https://doi.org/10.3390/ma10121342