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Tandem Cycloaddition-Cycloreversion of 2-pyrone and 1,4-oxazinone with Acetylene - A DFT Insight

Received: 5 December 2020    Accepted: 18 January 2021    Published: 27 February 2021
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Abstract

Reaction of either 2-pyrone or 1,4-oxazinone with acetylene follows the sequence of cycloaddition - cycloreversion through concerted mechanism. Transition states for both cycloaddition and cycloreversion pathways have been obtained in both the cases by modelling the reactions at B3LYP/6-31g (d) level. Cycloreversion is faster than cycloaddition in the case of 2-pyrone due to the enhancement of aromaticity resulting the product as benzene. In contrast, oxazinone has rapid cycloaddition. It is ascribed to the presence of nitrogen in this system. Removal of either CO2 or HCN is plausible in this mechanism to complete the reaction. Even though two pathways are feasible for cycloreversion, CO2 extrusion is more preferable than HCN elimination. In these two studied molecules, there is an enhancement of aromaticity up to transition states like any other pericyclic reaction and further it diminishes during cycloaddition. Further, aromaticity is specifically augmented in cycloreversion phase during CO2 elimination resulting to yield pyridine whereas competitive HCN elimination results in the formation of 2-pyrone which is less facile. In both the molecules the aromatic enhancement of the cycloreversion is substantiated through the study of magnetic susceptibility of the ring fragment along the reaction coordinate. Further the study also reveals the effect of halogen substituted at different carbons of 2-pyrone ring.

Published in International Journal of Pharmacy and Chemistry (Volume 7, Issue 1)
DOI 10.11648/j.ijpc.20210701.13
Page(s) 13-21
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This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2021. Published by Science Publishing Group

Keywords

Aromaticity, Cycloaddition-cycloreversion Reactin, DFT Study, Intrinsic Reaction Coordinate

References
[1] Neunhoeffer, H. and Werner, G. (1974). Cycloadditionen mit Azabenzolen, VII 1) Reaktion von pyrimidinen mit N,N-diäthyl-1-propinylamin. Justus Liebigs Annalen Chemie, 8, 1190. doi.org/10.1002/jlac.197419740803.
[2] Grigg, R., Hayes and Jackson, J. L. (1969). Thermal elimination reactions of nitrogen and sulphur heterocycles. Journal of the Chemical Society, 1167. doi.org/10.1039/C29690001167.
[3] Diels, O.; Alder, K. (1931). Synthesen in der hydroaromatischen Reihe, XIII. Justus Liebigs Annalen der Chemie. 490, 257. doi: 10.1002/jlac.19314900111.
[4] Afarinkia, K., Nelson, T. D., Vinader, M. V. and Posner, G. H. (1992), Diels-Alder cycloadditions of 2-pyrones and 2-pyridones. Tetrahedron., 48, 9111. doi.org/10.1016/S0040-4020(01)85607-6.
[5] Woodward, B. T.; Posner, G. H. Adv. Cycloaddit. 1999, 5, 47. 5. a) Damien F. P. Crepin, Joseph P. A. Harrity, Julong Jiang, Anthony J. H. M. Meijer, Anne-Chloé M. A. Nassoy, and Piotr Raubo. (2014), A mechanic study of the Lewis base-directed cycloaddition of 2-pyrones and alkynylboranes. Journal of the American Chemical Society. 136, 24, 8642. doi: 10.1021/ja501805r.
[6] Posner, G. H., Wettlaufer, D. G., (1986), Highly stereocontrolled synthesis of some trioxygenated cyclohexenes: an asymmetric total synthesis of (-)-methyl triacetyl-4-epishikimate. Journal of American Chemical Society. 108, 23, 7373. doi.org/10.1021/ja00283a036.
[7] Posner, G. H., Haces, A., Harrison, W. and Kinter, C. M., (1987), Highly stereocontrolled synthesis of some polyfunctionalized cyclohexenes. A short formal total synthesis of (.+-.)- chorismic acid. The Journal of Organic Chemistry, 52, 22, 4836. doi. 10.1021/jo00231a002.
[8] Posner, G. H.; Kinter, C. M. (1990) Asymmetric total synthesis of an A-ring precursor to hormonally active 1. alpha., 25-dihydroxyvitamin D3 J. Org. Chem. 55, 3967. https://doi.org/10.1021/jo00300a001.
[9] Posner, G. H. and Nelson, T. D. (1990), Stereocontrolled synthesis of highly functionalized cyclohexenes. A short synthesis of a chorismic acid precursor. Tetrahedran, 46, 4573. doi.org/10.1016/S0040-4020(01)85582-4.
[10] Jung, M. E.; Head, D. B. Bull. Soc. Chim. Fr. 1990, 127, 830.
[11] Marko, I. E., Seres, P., Swarbnck, T. M., Staton, I and Adams, H. (1992), Tandem pericyclic reactions. The first X-ray structure of an initial pyrone-olefin adduct and an easy, stereocontrolled, entry into polyoxygenated cyclohexanes. Tetrahedron Letters, 1992, 33, 5649. doi.org/10.1016/S0040-4039(00)61170-X.
[12] Afarinkia, K. and Mahmood, F. (1999), A novel and concise synthesis of 2-epi-validamine, Tetrahedron, 1999, 55, 3129. doi.org/10.1016/S0040-4020(99)00071-X.
[13] Ireland, R. E., Anderson, R. C, Badoud, R., Fitzsimmons, B. J., McGarvey, T. J. and Thaisnvongs, S. (1983), The total synthesis of ionophore antibiotics. A convergent synthesis of lasalocid A (X537A), Journal of the American Chemical Society, 105, 1988. doi: 10.1021/ja00345a055.
[14] Boger, D. L. and Brotherton, C. E. (1984), Total synthesis of azafluoranthene alkaloids: rufescine and imeluteine, The Journal of Organic Chemistry, 49, 4050. doi: 10.1021/jo00195a035.
[15] Ahmed, S. A., Bardshin, E. and Simpson, T. J. (1987), A convenient synthesis of isotopically labeled anthraquinones, chrysophanol, islandicin and emodin. Incorporation of [methyl-2H3]chrysophanol into tajixanthone in Aspergillus variecolor, Journal of the Chemical Society, Chemical Communications, 12, 883. doi.org/10.1039/C39870000883.
[16] Boger, D. L. and Mullican, M. D. (1984), Inverse electron demand Diels-Alder reactions of 3-carbomethoxy-2-pyrones. Controlled introduction of oxygenated aromatics: benzene, phenol, catechol, resorcinol and pyrogallol annulation. Regiospecific total synthesis of sendaverine and a preparation of 6,7-benzomorphanes, Journal of Organic Chemistry, 49, 4033. doi.org/10.1021/jo00195a033.
[17] Yamaguchi, R., Otsuji, A., Utimoto, K. and Kozima, S. (1992), 1,2-Addition of allyl and 2-oxo-2H-pyran-6-ylcarbonyl groups to cyclic C=N double bonds by means of organotin reagent for alkaloids synthesis; A facile synthesis of 8-oxoprotoberberine and norketoyobirine (Demethoxycarbonyloxogambirtannine), Bulletin of the Chemical Society of Japan. 65, 298. doi.org/10.1246/bcsj.65.298.
[18] a) Afarinkia, K., Vmader, V., Nelson, T. D. and Posner, G. H, (1992), Diels-Alder cycloadditions of 2-pyrones and 2-pyridones, Tetrahedron, 48, 9111. doi.org/10.1016/S0040-4020(01)85607-6 b) Kvita, V, Fischer, W. Chimia. 1993, 47, 3. c) Kalinin, V. N, Shilova, O. S, Russ. chem Rev. 1994, 63, 661. d) Woodward, B. T.; Posner, G. H, Recerit Advaixces in Diels-Alder Cycloadditions of 2-Pyrones. Advances in Cydoaddition; JAI Press: Greenwich, 1999; Vol. 5. P47.
[19] Frisch, M. J et al, Gaussian 98 (Revision A. 9), Gaussian, Inc. Pittsburgh, PA, 1998.
[20] Becke, A. D. (1993), Density-functional thermochemistry.III. The role of exact exchange. The Journal of Chemical Physics, 98, 5648. doi.org/10.1063/1.464913.
[21] Lee, C., Yang, W. and Parr, R. G. (1988), Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. Physical Review B, 37, 785. doi.org/10.1103/PhysRevB.37.785.
[22] Keith, T. A.; Bader, R. F. W. (1993) Calculation of magnetic response properties using a continuous set of gauge transformations Chem. Phys. Lett., 220, 223, https://doi.org/10.1016/0009-2614(93)89127-4.
[23] Keith, T. A. and Bader, R. F. W. (1992), Calculation of magnetic response properties using atoms in molecules. Chemical Physics Letters, 194, 1. doi.org/10.1016/0009-2614(92)85733-Q.
[24] Cheeseman, J. R., Frisch, M. J., Trucks, G. W. and Keith, T. A. (1996), A comparison of models for calculating nuclear magnetic resonance shielding tensors, The Journal of Chemical Physic, 104, 5497. doi.org/10.1063/1.471789.
[25] Foster, J. P. and Weinhold, F. (1980), Natural hybrid orbitals, Journal of American Chemical Society, 102, 7211. doi.org/10.1021/ja00544a007.
[26] Reed, A. D., Curtiss, L. A. and Weinhold, F, (1988), Intermolecular interactions from a natural bond orbital, donor-acceptor viewpoint, Chemical Reviews, 88, 899. doi.org/10.1021/cr00088a005.
[27] Glendening, E. D.; Reed, A E; Carpenter, J. E.; Weinhold, F, NBO 3.1 Program Manual, 1988.
[28] Froese, R. D. J.; Coxon, J. M.; West, S. C; Morokuma, K. (1997) Theoretical Studies of Diels−Alder Reactions of Acetylenic Compounds, J. Org. Chem. 1997, 62, 6991. https://doi.org/10.1021/jo970811u.
[29] Manoharan, M.; Venuvanalingam, P (1998) Gain or loss of aromaticity in Diels–Alder transition states and adducts: a theoretical investigation/. Phys. Org. Chem., 11, 1 33. https://doi.org/10.1002/(SICI)1099-1395(199802)11:2<133::AID-POC981>3.0.CO;2-R.
[30] Manoharan, M.; De Proft, F.; Geerlings, P. Aromaticity Interplay between Quinodimethanes and C60 in Diels−Alder Reactions: Insights from a Theoretical Study J. Org. Chem. 2000, 65, 6132 https://doi.org/10.1021/jo970811u.
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    Padmanaban Kalpana, Lakshminarayanan Akilandeswari, Ponnambalam Venuvanalingam. (2021). Tandem Cycloaddition-Cycloreversion of 2-pyrone and 1,4-oxazinone with Acetylene - A DFT Insight. International Journal of Pharmacy and Chemistry, 7(1), 13-21. https://doi.org/10.11648/j.ijpc.20210701.13

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    ACS Style

    Padmanaban Kalpana; Lakshminarayanan Akilandeswari; Ponnambalam Venuvanalingam. Tandem Cycloaddition-Cycloreversion of 2-pyrone and 1,4-oxazinone with Acetylene - A DFT Insight. Int. J. Pharm. Chem. 2021, 7(1), 13-21. doi: 10.11648/j.ijpc.20210701.13

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    AMA Style

    Padmanaban Kalpana, Lakshminarayanan Akilandeswari, Ponnambalam Venuvanalingam. Tandem Cycloaddition-Cycloreversion of 2-pyrone and 1,4-oxazinone with Acetylene - A DFT Insight. Int J Pharm Chem. 2021;7(1):13-21. doi: 10.11648/j.ijpc.20210701.13

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  • @article{10.11648/j.ijpc.20210701.13,
      author = {Padmanaban Kalpana and Lakshminarayanan Akilandeswari and Ponnambalam Venuvanalingam},
      title = {Tandem Cycloaddition-Cycloreversion of 2-pyrone and 1,4-oxazinone with Acetylene - A DFT Insight},
      journal = {International Journal of Pharmacy and Chemistry},
      volume = {7},
      number = {1},
      pages = {13-21},
      doi = {10.11648/j.ijpc.20210701.13},
      url = {https://doi.org/10.11648/j.ijpc.20210701.13},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ijpc.20210701.13},
      abstract = {Reaction of either 2-pyrone or 1,4-oxazinone with acetylene follows the sequence of cycloaddition - cycloreversion through concerted mechanism. Transition states for both cycloaddition and cycloreversion pathways have been obtained in both the cases by modelling the reactions at B3LYP/6-31g (d) level. Cycloreversion is faster than cycloaddition in the case of 2-pyrone due to the enhancement of aromaticity resulting the product as benzene. In contrast, oxazinone has rapid cycloaddition. It is ascribed to the presence of nitrogen in this system. Removal of either CO2 or HCN is plausible in this mechanism to complete the reaction. Even though two pathways are feasible for cycloreversion, CO2 extrusion is more preferable than HCN elimination. In these two studied molecules, there is an enhancement of aromaticity up to transition states like any other pericyclic reaction and further it diminishes during cycloaddition. Further, aromaticity is specifically augmented in cycloreversion phase during CO2 elimination resulting to yield pyridine whereas competitive HCN elimination results in the formation of 2-pyrone which is less facile. In both the molecules the aromatic enhancement of the cycloreversion is substantiated through the study of magnetic susceptibility of the ring fragment along the reaction coordinate. Further the study also reveals the effect of halogen substituted at different carbons of 2-pyrone ring.},
     year = {2021}
    }
    

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  • TY  - JOUR
    T1  - Tandem Cycloaddition-Cycloreversion of 2-pyrone and 1,4-oxazinone with Acetylene - A DFT Insight
    AU  - Padmanaban Kalpana
    AU  - Lakshminarayanan Akilandeswari
    AU  - Ponnambalam Venuvanalingam
    Y1  - 2021/02/27
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    DO  - 10.11648/j.ijpc.20210701.13
    T2  - International Journal of Pharmacy and Chemistry
    JF  - International Journal of Pharmacy and Chemistry
    JO  - International Journal of Pharmacy and Chemistry
    SP  - 13
    EP  - 21
    PB  - Science Publishing Group
    SN  - 2575-5749
    UR  - https://doi.org/10.11648/j.ijpc.20210701.13
    AB  - Reaction of either 2-pyrone or 1,4-oxazinone with acetylene follows the sequence of cycloaddition - cycloreversion through concerted mechanism. Transition states for both cycloaddition and cycloreversion pathways have been obtained in both the cases by modelling the reactions at B3LYP/6-31g (d) level. Cycloreversion is faster than cycloaddition in the case of 2-pyrone due to the enhancement of aromaticity resulting the product as benzene. In contrast, oxazinone has rapid cycloaddition. It is ascribed to the presence of nitrogen in this system. Removal of either CO2 or HCN is plausible in this mechanism to complete the reaction. Even though two pathways are feasible for cycloreversion, CO2 extrusion is more preferable than HCN elimination. In these two studied molecules, there is an enhancement of aromaticity up to transition states like any other pericyclic reaction and further it diminishes during cycloaddition. Further, aromaticity is specifically augmented in cycloreversion phase during CO2 elimination resulting to yield pyridine whereas competitive HCN elimination results in the formation of 2-pyrone which is less facile. In both the molecules the aromatic enhancement of the cycloreversion is substantiated through the study of magnetic susceptibility of the ring fragment along the reaction coordinate. Further the study also reveals the effect of halogen substituted at different carbons of 2-pyrone ring.
    VL  - 7
    IS  - 1
    ER  - 

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Author Information
  • Department of Chemistry, Sri Sarada College for Women (Autonomous), Salem, India

  • Department of Chemistry, Sri Sarada College for Women (Autonomous), Salem, India

  • School of Chemistry, Bharathidasan University, Trichirappalli, India

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