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Russian Chemical Reviews, 2000, Volume 69, Issue 2, Pages 153–164
DOI: https://doi.org/10.1070/RC2000v069n02ABEH000560
(Mi rcr1509)
 

This article is cited in 43 scientific papers (total in 43 papers)

Free radical addition: factors determining the activation energy

E. T. Denisov

Institute of Problems of Chemical Physics, Russian Academy of Sciences, Chernogolovka, Moscow region
Abstract: Empirical relations describing the reactivity of reagents in radical addition reactions and the results of quantum-chemical calculations of the activation energy of these processes are considered. The experimental data obtained for the addition of atoms and radicals to molecules with multiple bonds are analysed in terms of the parabolic model. The following characteristics and factors are shown to affect the activation energy of radical addition: the reaction enthalpy, the strength of the arising bond, the radius of the atom having a free valence, the presence of a π bond adjacent to the reaction centre, the interaction of two polar groups, the multidipole interaction, the steric factor, the non-linearity of the reaction centre, and the force constants of the reacting bonds. The bibliography includes 85 references.
Received: 01.11.1999
Bibliographic databases:
Document Type: Article
UDC: 539.19:541.115:547.21.024
Language: English
Original paper language: Russian


Citation: E. T. Denisov, “Free radical addition: factors determining the activation energy”, Usp. Khim., 69:2 (2000), 166–177; Russian Chem. Reviews, 69:2 (2000), 153–164
Linking options:
  • https://www.mathnet.ru/eng/rcr1509
  • https://doi.org/10.1070/RC2000v069n02ABEH000560
  • https://www.mathnet.ru/eng/rcr/v69/i2/p166
  • This publication is cited in the following 43 articles:
    1. Xinwei Chen, Liang Wu, Mengqi Ge, Xiangyi Wang, Ning Ren, Huai Sun, Xinyuan Zhu, Macromolecules, 2024  crossref
    2. Plekhovich S.D., Zelentsov S.V., Minasyan Yu.V., Grimova I.T., High Energy Chem., 56:1 (2022), 32–37  crossref  isi
    3. O. B. Tomilin, L. V. Fomina, E. V. Rodionova, Russ J Org Chem, 58:4 (2022), 488  crossref
    4. Fomichev D.A., Ovsyannikov D.V., Zelentsov S.V., High Energy Chem., 54:4 (2020), 254–258  crossref  isi  scopus
    5. Shevchenko V.P., Nagaev I.Yu., Myasoedov N.F., Radiochemistry, 60:2 (2018), 105–139  crossref  isi  scopus
    6. Moni P., Mohr A.C., Gleason K.K., Langmuir, 34:23 (2018), 6687–6696  crossref  isi  scopus
    7. Puchkov S.V. Nepomnyashchikh Yu.V., Russ. J. Phys. Chem. B, 12:5 (2018), 904–907  crossref  isi  scopus
    8. Plekhovich S.D., Zelentsov S.V., Minasyan Yu.V., Degtyarenko A.I., High Energy Chem., 52:6 (2018), 469–474  crossref  isi  scopus
    9. Denisov E.T. Pokidova T.S., Russ. Chem. Bull., 65:8 (2016), 1910–1929  crossref  isi  scopus
    10. Tomilin O.B. Tanaseichuk B.S. Boyarkina O.V., Russ. J. Organ. Chem., 52:11 (2016), 1576–1586  crossref  isi  scopus
    11. Tomlinson-Phillips J., Wooten A., Kozole J., Deline J., Beresford P., Stairs J., Talanta, 127 (2014), 152–162  crossref  isi  elib  scopus
    12. Homogeneous Catalysis with Metal Complexes, 2012, 665  crossref
    13. Panayiotis C. Varras, Antonios K. Zarkadis, J. Phys. Chem. A, 116:5 (2012), 1425  crossref
    14. Pokidova T.S. Denisov E.T., Russ. J. Phys. Chem. A, 85:3 (2011), 383–389  crossref  isi  elib  scopus
    15. Doo Nam Kim, Kwang-Hwi Cho, Won Seok Oh, Chang Joon Lee, Sung Kwang Lee, Jihoon Jung, Kyoung Tai No, J. Chem. Inf. Model., 49:7 (2009), 1643  crossref
    16. Gennady V. Korolev, Michael M. Mogilevich, Three-Dimensional Free-Radical Polymerization, 2009, 203  crossref
    17. T. S. Pokidova, E. T. Denisov, A. F. Shestakov, Kinet Catal, 50:5 (2009), 647  crossref
    18. T. S. Pokidova, E. T. Denisov, A. F. Shestakov, Pet. Chem., 49:5 (2009), 343  crossref
    19. Denisov E.T., Kinet. Catal., 49:3 (2008), 325–330  crossref  isi  elib  scopus
    20. Pokidova T.S. Denisov E.T. Shestakov A.F., Pet. Chem., 48:3 (2008), 174–185  crossref  isi  elib  scopus
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