Publicado

2018-04-01

Verification of the vibrational theoretical assignment of the DADP using isotopic labelling

Verificación de la asignación vibracional teórica de DADP usando marcaje isotópico

Palabras clave:

diacetone diperoxide, isotopomer, Raman and infrared spectroscopy, molecular vibration (en)
diacetona diperóxido, isotopómero, espectroscopia Raman e infrarroja, vibración molecular (es)

Autores/as

This work deals with the comparison of the theoretical assignment of the DADP vibrational spectrum with the experimental displacements by isotopic labeling. For this, the DADP-C4 and DADP-C2 isotopomers were synthesized from acetone labeled isotopically in the methyl and the carbonyl carbon atoms, respectively. The acetone and DADP-isotopomer compounds were characterized using Raman and infrared spectroscopy. Theoretical assignments were taken from previous studies on the potential energy distribution of a vibrational mode, which provide an approach to the internal coordinates related to each band. The selective isotopic labeling allowed us to approach to the dependence of each band, because the energy of a molecular vibration also depends on the reciprocal mass of the atoms involved. In general, the results showed that some bands assigned experimentally do not coincide with the theoretical assignments by quantum mechanical simulations.
Este trabajo trata sobre la comparación de la asignación teórica del espectro vibracional de DADP con los desplazamientos experimentales por marcación isotópica. Para ello, se sintetizaron los isotopómeros DADP-C4 y DADP-C2, los cuales son isotopómeros parcialmente marcados. DADP-C4 y DADP-C2 fueron sintetizados a partir de acetona marcada isotópicamente en los átomos de carbonos del grupo metilo y carbonilo, respectivamente. La acetona y los compuestos isotopómeros de DADP fueron caracterizados usando espectroscopia Raman e Infrarroja. Las asignaciones teóricas fueron tomadas de estudios previos sobre la distribución de energía potencial de un modo vibracional, el cual proporciona una aproximación a las coordenadas internas relacionadas con cada banda vibracional. La marcación isotópica selectiva nos permitió acercarnos a la dependencia de cada banda, debido a que, la energía de una vibración molecular depende también de la masa recíproca de los átomos involucrados. En general, los resultados mostraron que algunas bandas asignadas experimentalmente no coinciden con las asignaciones teóricas mediante simulaciones mecánicas cuánticas.

Citas

Landenberger, K.B., Bolton, O. and Matzger, A.J., Energetic–energetic cocrystals of diacetone diperoxide (DADP): dramatic and divergent sensitivity modifications via cocrystallization, Journal of the American Chemical Society, 137(15), pp. 5074-5079, 2015. DOI: 10.1021/jacs.5b00661.

Pena, A.J., Pacheco-Londono, L., Figueroa, J., Rivera-Montalvo, L.A., Roman-Velazquez, F.R. and Hernandez-Rivera, S.P., Characterization and differentiation of high energy cyclic organic peroxides by GC/FT-IR, GC-MS, FT-IR, and Raman microscopy, Proc. SPIE, 5778, pp. 347-358, 2005. DOI: 10.1117/12.604194.

Oxley, J., Smith, J., Brady, J., Dubnikova, F., Kosloff, R., Zeiri, L. and Zeiri, Y., Raman and infrared fingerprint spectroscopy of peroxide-based explosives, Applied Spectroscopy, 62(8), pp. 906-915, 2008.

Jensen, L., Mortensen, P.M., Trane, R., Harris, P. and Berg, R.W., Reaction kinetics of acetone peroxide formation and structure investigations using Raman spectroscopy and X-ray diffraction, Applied spectroscopy, 63(1), pp. 92-97, 2009.

Matyáš, R. and Pachman, J., Study of TATP: influence of reaction conditions on product composition. Propellants, Explosives, Pyrotechnics, 35 (1), pp. 31-37, 2010. DOI: 10.1002/prep.200800044

Espinosa‐Fuentes, E.A., Pacheco‐Londoño, L.C., Barreto‐Cabán, M.A. and Hernández‐Rivera, S.P., Novel Uncatalyzed Synthesis and Characterization of Diacetone Diperoxide, Propellants, Explosives, Pyrotechnics, 37(4), pp. 413-421, 2012. DOI: 10.1002/prep.201000130

Bellamy, A.J., Triacetone triperoxide: its chemical destruction, Journal of Forensic Science, 44(3), pp. 603-608, 1999. DOI: 10.1520/JFS14517J

Wappel, J., Grudzień, K., Barbasiewicz, M., Michalak, M., Grela, K. and Slugovc, C., Initiation efficacy of halo-chelated cis-dichloro-configured ruthenium-based second-generation benzylidene complexes in ring-opening metathesis polymerization, Monatshefte für Chemie-Chemical Monthly, 146(7), pp. 1153-1160, 2015. DOI: 10.1007/s00706-015-1494-8.

Jubert, A.H., Diez, R. and Cafferata, L.F.R., Experimental and theoretical studies of the vibrational spectra of 3, 3, 6, 6‐tetramethyl‐1, 2, 4, 5‐tetroxane, Journal of Raman spectroscopy, 30(6), pp. 479-484, 1999. DOI: 10.1002/(SICI)1097-4555(199906)30:6<479::AID-JRS400>3.0.CO;2-L

Coronel, A.C., Agüera, M.B., Torres, A.C., Fernández, L.E. and Varetti, E.L., A vibrational study of 3, 3, 6, 6-tetramethyl-1, 2, 4, 5-tetroxane: The spectra of the deuterated substance and the scaled quantum mechanics force field, Vibrational Spectroscopy, 58, pp. 67-73, 2012. DOI: 10.1016/j.vibspec.2011.10.004.

Keresztury, G., Holly, S., Besenyei, G., Varga, J., Wang, A. and Durig, J.R., Vibrational spectra of monothiocarbamates-II. IR and Raman spectra, vibrational assignment, conformational analysis and ab initio calculations of S-methyl-N, N-dimethylthiocarbamate, Spectrochimica Acta Part A: Molecular Spectroscopy, 49(13-14), pp. 2007-2026, 1993. DOI: 10.1016/S0584-8539(09)91012-1.

Evans, J.C., The vibrational assignments and configuration of aniline, aniline-NHD and aniline-ND2, Spectrochimica Acta, 16(4), pp. 428-442, 1960. DOI: 10.1016/0371-1951(60)80037-9.