61
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Nishchakova A.D.
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62
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Sedelnikova O.V.
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Effect of boron and nitrogen additives on structure and transport properties of arc-produced carbon
Carbon. 2019.
V.143. P.660-668. DOI: 10.1016/j.carbon.2018.11.071
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OpenAlex
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63
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Sedelnikova O.V.
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Optical Properties of CdS Quantum Dots on Graphene
Journal of Structural Chemistry. 2018.
V.59. N4. P.870-876. DOI: 10.1134/s0022476618040182
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64
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Sedelnikova O.V.
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, Zhuravlev V.A.
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Iron-filled multi-walled carbon nanotubes for terahertz applications: effects of interfacial polarization, screening and anisotropy
Nanotechnology. 2018.
V.29. N17. 174003
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65
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Koleśnik‐Gray M.
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Electrical Transport in Devices Based on Edge‐Fluorinated Graphene
Advanced electronic materials. 2018.
V.4. N7. 1800073
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66
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Valynets N.I.
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Fluorination as Effective Method for Tuning the Electromagnetic Response of Graphene
Physica Status Solidi B-basic Solid State Physics. 2018.
V.255. 1700226
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67
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Sysoev V.I.
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In situ XPS Observation of Selective NOx Adsorption on the Oxygenated Graphene Films
Physica Status Solidi B-basic Solid State Physics. 2018.
V.255. N1. 1700267
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OpenAlex
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68
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Sedelnikova O.V.
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Localization of π‐electron density in twisted bilayer graphene
Physica Status Solidi (rrl). 2017.
V.11. N2. 1600367
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69
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Sysoev V.I.
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Advantage of graphene fluorination instead of oxygenation for restorable adsorption of gaseous ammonia and nitrogen dioxide
Carbon. 2017.
V.118. P.225-232. DOI: 10.1016/j.carbon.2017.03.026
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OpenAlex
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70
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Sedelnikova O.V.
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Spontaneous symmetry breaking during the switching of a buckled graphene membrane
Jetp Letters. 2016.
V.103. N4. P.244-247. DOI: 10.1134/s0021364016040123
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71
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Makarova T.L.
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Correlation between manufacturing processes and anisotropic magnetic and electromagnetic properties of carbon nanotube/polystyrene composites
Composites Part B-engineering. 2016.
V.91. P.505-512. DOI: 10.1016/j.compositesb.2016.01.040
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72
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Makarova T.L.
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Magnetic studies of polystyrene/iron-filled multi-wall carbon nanotube composite films
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V.415. P.51-56. DOI: 10.1016/j.jmmm.2016.01.088
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73
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Makarova T.L.
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Assessing carbon nanotube arrangement in polystyrene matrix by magnetic susceptibility measurements
Carbon. 2016.
V.96. P.1077-1083. DOI: 10.1016/j.carbon.2015.10.065
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74
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Sysoev V.I.
, Bulusheva L.G.
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Thermally exfoliated fluorinated graphite for NO2 gas sensing
Physica Status Solidi B-basic Solid State Physics. 2016.
V.253. N12. P.2492-2498. DOI: 10.1002/pssb.201600270
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OpenAlex
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75
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Sysoev V.I.
, Gusel’nikov A.V.
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Sensor properties of electron beam irradiated fluorinated graphite
Journal of Nanophotonics. 2016.
V.10. N1. 012512
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OpenAlex
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76
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Sedelnikova O.V.
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Graphitic and pyridinic nitrogen in carbon nanotubes: energetic and polarization aspects
Journal of Nanophotonics. 2015.
V.10. N1. 012510
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OpenAlex
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77
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Bulusheva L.G.
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Many‐body effects in optical response of graphene‐based structures
International Journal of Quantum Chemistry. 2015.
V.116. N4. P.270-281. DOI: 10.1002/qua.25046
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78
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Kurenya A.G.
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Field emission properties of aligned CNx nanotube arrays synthesized by pyrolysis of a ferrocene/acetonitrile aerosol at different temperatures
Physica Status Solidi B-basic Solid State Physics. 2015.
V.252. N11. P.2524-2529. DOI: 10.1002/pssb.201552265
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79
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Kanygin M.A.
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Polymer-assisted forge-rolling disaggregation of detonation nanodiamonds and onion-like carbon
International Journal of Nanotechnology. 2015.
V.12. N3/4. 182-191
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80
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Katkov M.V.
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A backside fluorine-functionalized graphene layer for ammonia detection
PCCP: PHYSICAL CHEMISTRY CHEMICAL PHYSICS. 2015.
V.17. N1. P.444-450. DOI: 10.1039/c4cp03552f
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