His research interests lie in the fields of solid state chemistry

His research interests lie in the fields of solid state chemistry, synthesis and materials design, and crystal and electronic structures of low-dimensional inorganic materials with unusual electronic properties. He has more than 400 publications, including original articles, reviews, patents, and three books. Acknowledgements Emricasan purchase We thank the FAEMCAR

and ILSES Projects of Marie Curie Actions and Nanotwinning Project of FP7 Program for the financial assistance. Thanks as well to Dr. Yu. I. Sementsov (Kiev) and Prof. V. Levin (Moscow) for the samples of MWCNTs and HOPG, respectively, and A. Rynder for the measurement of the Raman spectra (Kiev). References 1. Kosobukin V: The effect of enhancement the external field near the surface of metal and its manifestation in spectroscopy. Surface: Phys Chem Mech 1983, 12:5–20. 2. Domingo C: Infrared spectroscopy on nanosurfaces. Opt Pur Apl 2004, 16:567–571. 3. Le Ru EC, Etchegoin PG: Single-molecule surface-enhanced Raman spectroscopy. Annu Rev Phys Chem 2012, 63:65–87.CrossRef 4. Wang X, Shi W, She G, Mu L: Surface-enhanced Raman scattering (SERS) on transition metal and semiconductor nanostructures. Phys Chem Chem Phys 2012, 14:5891–5901.CrossRef 5. Dovbeshko G, Fesenko O, Gnatyuk O, Yakovkin K, Shuba M, Maksimenko

S: Enhancement of the infrared absorption LY3023414 solubility dmso by biomolecules adsorbed on single-wall carbon nanotubes. In Physics, Chemistry and Application of Nanostructure. Edited by: Borisenko V. London: World Scientific; 2011:291. 6. Dovbeshko G, Fesenko O, Rynder A, Posudievsky O: Enhancement of infrared absorption of biomolecules absorbed on single-wall carbon nanotubes and grapheme nanosheets. J Nanophotonics 2012, 6:061711.CrossRef 7. Dovbeshko G, Fesenko O, Gnatyuk O, Rynder A, Posudievsky O: Gemcitabine cell line Comparative analysis of the IR signal enhancement of biomolecules adsorbed on graphene and graphene oxide nanosheets. In Nanomaterials Imaging Techniques, Surface Studies, and Methisazone Applications. Edited by: Fesenko

O, Yatsenko L, Brodyn M. Dordrecht: Springer; 2013:1–10. 8. Rinder A, Dovbeshko G, Fesenko O, Posudievsky O: Surface-enhanced Raman scattering of biomolecules on graphene layers [abstract]. In Nanotechnology: from Fundamental Research to Innovations. Edited by: Yatsenko L. Bukovel: EvroSvit; 2013:s55. 9. Xi L, Xie L, Fang Y, Xu H, Zhang H, Kong J, Dresselhaus M, Zhang J, Liu Z: Can graphene be used as substrate for Raman enhancement? Nano Lett 2010, 10:553–561.CrossRef 10. Huang C, Kim M, Wong BM, Safron NS, Arnold MS, Gopalan P: Raman enhancement of a dipolar molecule on graphene. J Phys Chem 2014, 118:2077–2084. 11. Xu W, Mao N, Zhang J: Graphene: a platform for surface-enhanced Raman spectroscopy. Nano Micro Small 2013,8(9):1206–1224. 12. Kima H, Sheps T, Taggarta D, Collinsb P, Pennera R, Potmaa E: Coherent anti-Stokes generation from single nanostructures. Proc of SPIE 2009, 7183:718312–1. 13. Chen CK, De CAHB, Shen YR, De Martini F: Surface coherent anti-Stokes Raman spectroscopy.

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