In this work, some critical structures (e.g. stable structure, transition state, local minimum and conical intersection) of azobenzene photoisomerization were optimized by means of ab initio CASSCF calculation. The potential energy surfaces for the CNNC dihedral torsion and CNN bond angle concerted-inversion pathway were mapped to explore the relaxation process of azobenzene (AB) photoisomerization. The results indicate that the rotational mechanism favors the photoisomerization of the S(1)(n,pi*) and S(2)(pi,pi*) trans-AB. The concerted-inversion mechanism may operate in the decay process of S(2)(pi,pi*) or higher state trans-AB. By borrowing the (n,pi*; pi,pi*) and (n(2),pi*(2)) electronic states, trans-AB upon excitation to the higher states can quickly relax to the S(1)(n,pi*) or ground state via the rotation or concerted-inversion pathway. The forming ground-state species with higher vibrational energy from the higher excited states will become the stable trans-isomer through the concerted-inversion pathway. These relaxation processes have been confirmed by the conical intersections calculated by the high-level CASSCF method.
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http://dx.doi.org/10.1016/j.jmgm.2008.11.011 | DOI Listing |
J Chem Phys
July 2024
Department of Chemistry, Birla Institute of Technology and Science (BITS), Pilani, K. K. Birla Goa Campus, Zuarinagar, India.
The isomerization of azobenzo-13-crown ether can be expected to be hindered due to the polyoxyethylene linkage connecting the 2,2'-positions of azobenzene. The mixed reference spin-flip time-dependent density functional theory results reveal that the planar and rotational minima of the first photo-excited singlet state (S1) of the trans-isomer pass through a barrier (2.5-5.
View Article and Find Full Text PDFJ Phys Chem A
August 2023
Department of Chemistry, Birla Institute of Technology and Science (BITS), Pilani, K.K. Birla Goa Campus, Zuarinagar 403726, India.
Computational studies on → and → isomerizations of photoresponsive azobis(benzo-15-crown-5) have been reported in this work. The photoexcited ππ* state (S) of the isomer relaxes through the planar S minimum and the planar S/S conical intersection (both situated around 9 kcal/mol below the vertically excited S state) arising along the N═N stretching coordinate. The nπ* state (S) of this isomer has both planar and rotated (clockwise and anticlockwise) minima, which may lead to a torsional conical intersection (S/S) geometry having a
J Org Chem
July 2010
Department of Chemistry, University of Connecticut, 55 North Eagleville Road U-3060, Storrs, Connecticut 06269, USA.
Azobenzene undergoes reversible cis<-->trans photoisomerization upon irradiation. Substituents often change the isomerization behavior of azobenzene, but not always in a predictive manner. The synthesis and properties of three azobenzene derivatives, AzoAMP-1, -2, and -3, are reported.
View Article and Find Full Text PDFJ Mol Graph Model
April 2009
Key Laboratory of Green Processing and Functional Textiles of New Textile Materials (Wuhan University of Science and Engineering), Ministry of Education, Wuhan 430073, PR China.
In this work, some critical structures (e.g. stable structure, transition state, local minimum and conical intersection) of azobenzene photoisomerization were optimized by means of ab initio CASSCF calculation.
View Article and Find Full Text PDFJ Phys Chem A
July 2006
Department of Chemistry and Quantum Theory Project, University of Florida, Gainesville, FL 32611, USA.
A series of azobenzenes was studied using ab initio methods to determine the substituent effects on the isomerization pathways. Energy barriers were determined from three-dimensional potential energy surfaces of the ground and electronically excited states. In the ground state (S(0)), the inversion pathway was found to be preferred.
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