Сведения об официальных оппонентах, включая публикации (1097597), страница 2
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V. Savin, E. A. Korznikova, S. V. Dmitriev Low frequency vibrations of carbonnanoscrolls. Letters on materials 6 (1), pp. 77-81 (2016).5. V. Zolotarevskiy, A. V. Savin, and O. V. Gendelman. Heat conduction in a chain ofdissociating particles: Effect of dimensionality. Physical Review E. 91, 032127 (2015).6. A.
V. Savin, E. A. Korznikova, and S. V. Dmitriev Scroll configurations of carbonnanoribbons Physical Report B 92, 035412, (2015).7. A. V. Savin and O. I. Savina. Dependence of the Thermal Conductivity of a PolymerChain on Its Tension. Physics of the Solid State. 2014. V. 56, No. 8, 1664–1672 (2014).8. A. V. Savin and O. V. Gendelman. Mechanical control of heat conductivity inmolecular chains. Physical Review E. 012134 (2014).9. O. V. Gendelman and A.
V. Savin. Normal heat conductivity in chains capable ofdissociation. European Physical Letter 106, 34004 (2014).10. A. V. Savin and Yu. A. Kosevich. Thermal conductivity of molecular chains withasymmetric potentials of pair interactions Physical Review E. 89, 032102, (2014).11. A. V. Savin, I. P. Kikot, M. A. Mazo, and A.
V. Onufriev. Two-phase stretching ofmolecular chains. Proceedings of the National Academy of Sciences of the USA(PNAS) 110, no 8, 2816-2821 (2013)12. Yu.A. Kosevich, A.V. Savin, A. Cantarero. Effects of quantum statistics of phonons onthe thermal conductivity of silicon and germanium nanoribbons.
Nanoscale ResearchLetters. V. 8. № 7. P.1 (2013)13. O. V. Gendelman and A. V. Savin. Normal heat conductivity in chains capable ofdissociation. European Physical Letter 106, 34004 (2014).14. A. V. Savin and O. V. Gendelman. Mechanical control of heat conductivity inmolecular chains. Physical Review E 89, 012134 (2014).15.
A. V. Savin, Yu. S. Kivshar. Localized defect modes in graphene. Physical Review B, 88,125417 (2013)..