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Journal Article

Photo-stability of peptide-bond aggregates: N-methylformamide dimers

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Crespo-Otero,  Rachel
Research Group Barbatti, Max-Planck-Institut für Kohlenforschung, Max Planck Society;
Department of Chemistry, University of Bath;

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Sanchez-Garcia,  Elsa
Research Group Sánchez-García, Max-Planck-Institut für Kohlenforschung, Max Planck Society;

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Barbatti,  Mario
Research Group Barbatti, Max-Planck-Institut für Kohlenforschung, Max Planck Society;

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c4cp02518k1.pdf
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Citation

Crespo-Otero, R., Mardykov, A., Sanchez-Garcia, E., Sander, W., & Barbatti, M. (2014). Photo-stability of peptide-bond aggregates: N-methylformamide dimers. Physical Chemistry Chemical Physics, 16(35), 18877-18887. doi:10.1039/C4CP02518K.


Cite as: https://hdl.handle.net/11858/00-001M-0000-0024-A360-C
Abstract
The formation of weakly-bound dimers of N-methylformamide (NMF) and the photochemistry of these dimers after irradiation at 248 nm were explored using matrix-isolation spectroscopy. Calculations were used to characterize the diverse isomers and assign their IR spectra; non-adiabatic dynamics was simulated to understand their photo-deactivation mechanism. The most stable dimers, tt-1 and tt-2, were obtained by trans–trans aggregation (N–H···O=C interactions) and could be identified in the matrix. The main products formed after irradiation are the trans–cis dimers (tc-3 and tc-4), also stabilized by N–H···O=,C interactions. In contrast to the photochemistry of the monomers, no dissociative products were observed after 248 nm irradiation of the dimers. The absence of dissociative products can be explained by a proton-transfer mechanism in the excited state that is faster than the photo-dissociative mechanism. The fact that hydrogen bonding has such a significant effect on the photochemical stability of NMF has important implications to understand the stability of peptide-bonded systems to UV irradiation.