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Determination of the Photoisomerization Quantum Yield of a Hydrazone Photoswitch
Published on: February 7, 2022
Hydroxyl-directed differentiation of photocyclization pathways in triphenylamine monitored by transient absorption
Yonggang Yang1, Xuchao Cui1, Yang Liu1
1Henan Key Laboratory of Infrared Materials and Spectrum Measures and Applications, Henan Province Engineering Research Center of Optoelectronic Technology and Advanced Manufacturing, School of Physics, Henan Normal University, Xinxiang 453007, China.
Abstract:
Photoinduced [6π]-electrocyclization of triphenylamine provides an efficient route to the construction of carbazole frameworks. In this work, 4-(diphenylamino)phenol (TPA-OH) was selected as a model compound to examine how hydroxyl substitution breaks the symmetry of triphenylamine and differentiates its photocyclization pathways. Transient absorption spectroscopy revealed that the singlet excited-state absorption of 1TPA-OH at 627 nm decays within 1.6 ns, accompanied by the emergence of the triplet excited-state absorption of 3TPA-OH at 508 nm, which subsequently decays with a lifetime of 45.7 ns. Thereafter, a positive absorption signal appears at 441 nm, corresponding to the triplet cyclization intermediate 3DHC0-OH. The long-lived absorption band near 608 nm is attributed to overlapping contributions from 1DHC0-OH and subsequent product-related species. Intrinsic reaction coordinate and Mayer bond-order analyses confirm that ring closure is governed by intramolecular C-C bond formation. Hydroxyl substitution changes the equivalence of the ring-closing sites, allowing ring closure either between the two unsubstituted phenyl rings (EXO cyclization) or through involvement of the hydroxyl-substituted phenyl ring (ENDO cyclization). On both the potential-energy and free-energy surfaces, the EXO pathway is favored over the ENDO pathway, exhibiting a lower potential-energy barrier (4.5 vs 26.5 kcal mol-1), a substantially lower Gibbs free-energy barrier (28.4 vs 112.1 kJ mol-1), and a more stable cyclized product (-42.6 vs -4.5 kJ mol-1). Although hydroxyl substitution does not alter the dominance of the EXO channel, it provides mechanistic insights and suggests a potential avenue for the targeted synthesis of carbazoles via the ENDO pathway.
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