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1.


   
    Structural diagnostics of functional nanomaterials with the use of X-ray synchrotron radiation / N. N. Trofimova [et al.] // Nanotechnologies in Russia. - 2013. - Vol. 8, Is. 5-6. - P. 396-401, DOI 10.1134/S1995078013030191 . - ISSN 1995-0780
Кл.слова (ненормированные):
Experimental facilities -- Functional Nano materials -- Kurchatov synchrotron radiation -- Magnetic nano-particles -- Research capabilities -- Structural diagnostics -- Structural elements -- X-ray synchrotron radiation -- Nanostructured materials -- Synchrotron radiation
Аннотация: An experimental facility for the complex X-ray diagnostics of functional nanomaterials (Structural Materials Science beamline) installed at the Kurchatov Synchrotron Radiation Center is presented. The key structural elements of the beamline are described. The research capabilities of the facility are demonstrated by the example of transparent magnets and glasses with magnetic nanoparticles, which are promising for the design of magneto-optical data storage and spintronics devices.

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Публикация на русском языке Структурная диагностика функциональных наноматериалов с использованием рентгеновского синхротронного излучения // Российские нанотехнологии. - Москва : Парк-медиа, 2013. - Т. 8, № 5-6. - С. 108-112

Держатели документа:
National Research Center Kurchatov Institute, pl. Kurchatova 1, Moscow, 123182, Russian Federation
Faculty of Chemistry, Moscow State University, Moscow, 119991, Russian Federation
Moscow Institute of Physics and Technology (State University), Institutskii per. 9, Dolgoprudnyi, Moscow oblast, 141700, Russian Federation
Kirenskii Institute of Physics, Russian Academy of Sciences, Krasnoyarsk, 660036, Russian Federation
Nesmeyanov Institute of Organoelement Compounds, Russian Academy of Sciences, ul. Vavilova 28, Moscow, 119991, Russian Federation

Доп.точки доступа:
Trofimova, N. N.; Veligzhanin, A. A.; Murzin, V.Y; Chernyshov, A. A.; Khramov, E. V.; Zabluda, V. N.; Заблуда, Владимир Николаевич; Edel'man, I. S.; Эдельман, Ирина Самсоновна; Slovokhotov, Y. L.; Zubavichus, Y. V.
}
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2.


   
    Структурная диагностика функциональных наноматериалов с использованием рентгеновского синхротронного излучения / Н. Н. Трофимова [и др.] // Рос. нанотехнологии. - 2013. - Т. 8, № 5-6. - С. 108-112
Аннотация: Представлена экспериментальная установка комплексной рентгеновской диагностики функциональных наноструктурированых материалов – станция «Структурное материаловедение», установленная на Курчатовском источнике синхротронного излучения. Дано описание ключевых конструктивных элементов станции. Исследовательские возможности станции продемонстрированы на примере «прозрачных магнитов» – стекол с магнитными наночастицами, перспективных для дизайна устройств магнитооптического хранения информации и спинтроники.

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Переводная версия Structural diagnostics of functional nanomaterials with the use of X-ray synchrotron radiation. - [Б. м. : б. и.]

Держатели документа:
Институт физики им. Л.В. Киренского СО РАН

Доп.точки доступа:
Трофимова, Н. Н.; Велигжанин, А. А.; Мурзин, В. Ю.; Чернышов, А. А.; Храмов, Е. В.; Заблуда, Владимир Николаевич; Zabluda, V.N.; Эдельман, Ирина Самсоновна; Словохотов, Ю. Л.; Зубавичус, Я. В.
}
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3.


   
    In situ spectral magnetoellipsometry for structural, magnetic and optical properties of Me/Si (Me=Mn,Fe) nanolayers / V. N. Zabluda [et al.] // Proc. int. conf. nanomaterials: application and properties. - 2013. - Vol. 2, No. 3. - P. 03AET11

Материалы конференции

Доп.точки доступа:
Zabluda, V. N.; Заблуда, Владимир Николаевич; Kosyrev, N. N.; Косырев, Николай Николаевич; Varnakov, S. N.; Варнаков, Сергей Николаевич; Ovchinnikov, S. G.; Овчинников, Сергей Геннадьевич; Tarasov, I. A.; Тарасов, Иван Анатольевич; Lyashchenko, S. A.; Лященко, Сергей Александрович; Shvetsov, D. V.; Maksimova, O. A.; Yakovlev, I. A.; Яковлев, Иван Александрович; Shvets, V. A.; Швец, Василий Александрович; Rykhlitsky, S. V.; Рыхлицкий С.В.; International conference nanomaterials: applications and properties(2013 ; Sept. 16-21 ; Crimea, Ukraine)
}
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4.


   
    Magnetooptics in gold and silver nanosizes low-dimensional objects / A. E. Sokolov [et al.] // Proc. Int. Conf. Nanomaterials: Application and Properties. - 2013. - Vol. 2, № 1. - Ст. 01NFPMM06

Материалы конференции

Доп.точки доступа:
Sokolov, A. E.; Соколов, Алексей Эдуардович; Zabluda, V. N.; Заблуда, Владимир Николаевич; Ovchinnikov, S. G.; Овчинников, Сергей Геннадьевич; Knyazev, B. A.; Gerasimov, V. V.; Michlin, J. L.; Veshnyakova, E.A.; Zubavichus, Y. V.; Kalsin, A. M.; "Nanomaterials: Application and Properties", International Conference (3 ; 16–21 Sept., 2013 ; Alushta, Ukraine)
}
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5.


   
    Synthesis, Morphology and Thermal Properties of α-Eu2(MoO4)3 Faceted Microcrystals [Текст] / V. V . Atuchin [и др.] // International Symposium on Nanoscience and Nanoengineering: Nanomaterials for Renewable Energy and Clean Enviroment. - 2014
   Перевод заглавия: Синтез, морфология и термические свойства ограненных микрокристаллов α-Eu2(MoO4)3


Доп.точки доступа:
Atuchin, V. V.; Атучин, Виктор Валерьевич; Chimitova, O. D.; Чимитова О. Д.; Gavrilova, T. A.; Гаврилова Т. А.; Molokeev, M. S.; Молокеев, Максим Сергеевич; Bazarov, B. G.; Базаров Б. Г.; Bazarova, Zh. G.; Базарова Ж. Г.; International Symposium on Nanoscience and Nanoengineering: Nanomaterials for Renewable Energy and Clean Environment (27-30 June 2014 ; Urumqi, China)
}
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6.


   
    Growth of α-FeSi2 nanocrystals on si(100) with Au catalyst / I. A. Tarasov [et al.] // Mater. Lett. - 2016. - Vol. 168. - P. 90-94, DOI 10.1016/j.matlet.2016.01.033. - Cited References: 25. - The work was supported by the Program of the President of the Russian Federation for the support of leading scientific schools (Scientific School 2886.2014.2), The Russian Foundation for Basic Research (RFBR) (Grants no. 13-02-01265), State Contract no. 02.G25.31.0043 and State Task no. 16.663.2014К). . - ISSN 0167-577X
РУБ Materials Science, Multidisciplinary + Physics, Applied
Рубрики:
EPITAXIAL-GROWTH
   LOW-TEMPERATURE

   FeSi2

   NANOWIRES

   Si(111)

   FILMS

   Si

Кл.слова (ненормированные):
Nanomaterials -- Molecular beam epitaxy -- α-FeSi2 -- Electrode
Аннотация: Self-organized α-FeSi2 nanocrystals on (100) silicon substrate were synthesized by molecular beam epitaxy with Au catalyst. The microstructure and basic orientation relationship between the silicide nanocrystals and silicon substrate were analyzed in detail. α-FeSi2 nanocrystals appeared to be inclined trapezoid and rectangular nanoplates, polyhedral nanobars and pyramid-like ones, aligned along 011 directions on (100) silicon substrate with the length up to 1.5 μm, width ranging between 80 and 500 nm and thickness from 30 to 170 nm. As has been proposed metallic iron silicide may be used for manufacturing electric contacts on silicon. A current-voltage characteristic of the structure was measured at room temperature and showed good linearity.

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Держатели документа:
Siberian State Aerospace University, 31 Krasnoyarsky Rabochiy Av., Krasnoyarsk, Russian Federation
Kirensky Institute of Physics, Russian Academy of Sciences, Akademgorodok 50, bld. 38, Krasnoyarsk, Russian Federation
Far Eastern State Transport University, Serysheva str. 47, Khabarovsk, Russian Federation
Krasnoyarsk Scientific Centre, Russian Academy of Sciences, Akademgorodok 50, Krasnoyarsk, Russian Federation

Доп.точки доступа:
Tarasov, I. A.; Тарасов, Иван Анатольевич; Yakovlev, I. A.; Яковлев, Иван Александрович; Molokeev, M. S.; Молокеев, Максим Сергеевич; Rautskii, M. V.; Рауцкий, Михаил Владимирович; Nemtsev, I. V.; Немцев, Иван Васильевич; Varnakov, S. N.; Варнаков, Сергей Николаевич; Ovchinnikov, S. G.; Овчинников, Сергей Геннадьевич
}
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7.


   
    Short-term culture of monocytes as an in vitro evaluation system for bionanomaterials designated for medical use / E. I. Shishatskaya [et al.] // Food Chem. Toxicol. - 2016. - Vol. 96. - P. 302-308, DOI 10.1016/j.fct.2016.08.025. - Cited References: 46 . - ISSN 0278-6915
РУБ Food Science & Technology + Toxicology
Рубрики:
MAGNETIC NANOPARTICLES
   CELLULAR REDUCTION

   PROTEIN CORONA

   CELLS

   MECHANOTRANSDUCTION

   NANOMATERIALS

   LOCALIZATION

   BIOMATERIALS

   CYTOSKELETON

   ACTIVATION

Кл.слова (ненормированные):
Biocompatible biopolymers -- Polyhydroxyalkanoates -- Nanomaterials -- Nanodiamonds -- Fullerenes -- Bio-nanomaterials -- Monocytes
Аннотация: We studied the feasibility of using a short-term culture of monocytes, isolated from peripheral donor blood, to assess the biological activity of different types of bionanomaterials (BNM): biodegradable polimeric particles, fiber and film substrates of micro- and nano-dimensions, fullerenes (F) and nanodiamonds (ND), which are either currently in use and/or potentially applicable in medicine. Additionally, the effect of creating a protein corona on ND and F particles was investigated. The cellular reduction of (4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) is a well-established tool for assessing the viability/metabolic activity of cells. The scanning electron microscopy assay can detect fine changes in cell morphology. In the present study BNM have been shown to affect; in a size, chemical composition and morphological characteristics-dependent manner, the ability of monocytes to reduce MTT as well as their morphology. Moreover, the specific effects of ND and F on MTT reduction and cell morphology were exhibited in a dose-dependent manner and sensitive to the formation of surface protein corona. Our results suggest that short-term culture of monocytes is a sensitive model system for assessing the biological effects of BMPs in vitro. © 2016 Elsevier Ltd

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Держатели документа:
Siberian Federal University, Svobodnuy Av. 79, Krasnoyarsk, Russian Federation
Laboratory of Anatomy, Histology, Embryology, School of Medicine, University of Crete, Heraklion, Greece
Institute of Physics, Russian Academy of Science, Siberian Division, Akademgorodok, 50, Build. 38, Krasnoyarsk, Russian Federation
Laboratory of Toxicology, Medical School, University of Crete, Heraklion, Greece

Доп.точки доступа:
Shishatskaya, E. I.; Шишацкая, Екатерина Игоревна; Nikitovic, D.; Shabanov, A. V.; Шабанов, Александр Васильевич; Tzanakakis, G. N.; Tsatsakis, A. M.; Menzianova, N. G.
}
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8.


   
    Ferritization of industrial waste water and microbial synthesis of iron-based magnetic nanomaterials from sediments / M. I. Teremova [et al.] // Environ. Prog. Sustain. Energy. - 2016. - Vol. 35, Is. 5. - P. 1407-1414, DOI 10.1002/ep.12368. - Cited References:26. - The work has been carried out with support of grant of RFFI No 10-08-01278 and DST-ILTP-A.2.61 under DST-RFBR Indo-Russian Long term Collaborative Project. Authors are grateful to P.P. Pustoshilov, N.M. Kuchin, O.A. Bayukov, A.P. Puzyr and Lobova T.I. for assistance in experiment performance and valuable remarks. . - ISSN 1944-7442. - ISSN 1944-7450
РУБ Green & Sustainable science & Technology + Engineering, Environmental + Engineering, Chemical + Engineering, Industrial + Environmental Sciences
Рубрики:
ACIDITHIOBACILLUS FERROOXIDANS CELLS
   POT MULTICOMPONENT SYNTHESIS

Кл.слова (ненормированные):
industrial wastes -- ferritization -- bacteria -- magnetic -- ferrihydrite -- nanoparticles
Аннотация: The precipitation of iron and associated heavy metals in industrial waste water and in model solution using ferritization and aerobic bacterial culture was investigated. Magnetic sediments extractable by magnetic separation (specific saturation magnetization of 16–36.8 G cm3/g) were produced by precipitation of iron by ferritization method at рН (8–10) and 60–80°С for 15–30 min. Nanoparticles of ferrihydrite or ferric hydroxide doped with associated metals (Co, Ni) were produced under precipitation of ferric iron in model solution with bacteria at the temperature 26–34°С. The radii of synthesized particles are 1–5 nm and nanoparticles of ferrihydrite are superparamagnetic in both un-doped and doped (Co, Ni, Zn) sets. Dispersed structure of biogenic nanoparticle sols, their magnetic and other properties were studied by atomic force microscopy, X-ray small-angle scattering, X-ray diffraction, electron magnetic resonance, Mössbauer and X-ray photoelectron spectroscopy.

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Держатели документа:
Russian Acad Sci, Siberian Branch, Krasnoyarsk Sci Ctr, Krasnoyarsk, Russia.
Russian Acad Sci, Inst Phys, Siberian Branch, Krasnoyarsk, Russia.
Russian Acad Sci, Boreskov Inst Catalysis & Chem Technol, Siberian Branch, Novosibirsk, Russia.
Russian Acad Sci, Inst Catalysis, Siberian Branch, Novosibirsk, Russia.
Siberian Fed Univ, Krasnoyarsk, Russia.
Natl Met Lab, CSIR, Jamshedpur, Bihar, India.

Доп.точки доступа:
Teremova, M. I.; Petrakovskaya, E. A.; Петраковская, Элеонора Анатольевна; Romanchenko, A. S.; Tuzikov, F. V.; Gurevich, Y. L.; Tsibina, O. V.; Yakubailik, E. K.; Якубайлик, Эдуард Константинович; Abhilash; RFFI [10-08-01278]; DST-RFBR Indo-Russian Long term Collaborative Project [DST-ILTP-A.2.61]
}
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9.


   
    Optimization of steel-surface hardening by carbon nanostructures followed by treatment with hIgh-intensity energy sources / G. S. Bocharov [et al.] // J. Surf. Invest. - 2018. - Vol. 12, Is. 1. - P. 27-32, DOI 10.1134/S102745101801007X. - Cited References: 14. - This study was supported by the Russian Science Foundation, project no. 16-19-10027. . - ISSN 1027-4510
Кл.слова (ненормированные):
metal surface hardening -- carbon nanomaterials -- laser irradiation -- electron-beam treatment -- microhardness
Аннотация: The effect whereby a steel surface is modified by its covering with a nanocarbon material followed by fast electron- or laser-beam irradiation is studied. The initial material is low-carbon steel. Soot produced via the thermal sputtering of graphite electrodes in an electric arc with the subsequent extraction of fullerenes is used as the nanocarbon coating. Due to the fact that nanocarbon-coated samples are irradiated with a 60-keV electron beam, the material microhardness enhances considerably. The dependence between the microhardness and the irradiation energy is nonmonotonic and reaches its maximum (about 600 ± 20 HV) under the condition that the electron-irradiation energy is 460 J/cm2 and the intensity is 1.53 kW/cm2. This corresponds to a fourfold increase in the microhardness. Electron-beam irradiation of the treated surface is accompanied by a 1.5–2-fold decrease in the friction coefficient. Experimental results are compared with data obtained under laser irradiation of the nanocarbon-coated steel surface.

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Публикация на русском языке Оптимизация упрочнения стальной поверхности углеродными наноструктурами с последующей обработкой высокоинтенсивными источниками [Текст] / Г. С. Бочаров [и др.] // Поверхность. - 2018. - № 1. - С. 33-39

Держатели документа:
National Research University “Moscow Power Engineering Institute”, Moscow, Russian Federation
Kirensky Institute of Physics, Siberian Branch, Russian Academy of Sciences, Krasnoyarsk, Russian Federation

Доп.точки доступа:
Bocharov, G. S.; Eletskii, A. V.; Zakharenkov, A. V.; Zilova, O. S.; Sliva, A. P.; Terentyev, E. V.; Fedorovich, S. D.; Churilov, G. N.; Чурилов, Григорий Николаевич
}
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10.


   
    Decoration of carbon nanomaterial powders with dispersed platinum metal particles / V. G. Isakova [et al.] // Russ. J. Appl. Chem. - 2018. - Vol. 91, Is. 7. - P. 1209-1216, DOI 10.1134/S1070427218070212. - Cited References: 22. - The study was performed with the support and equipment of the Center for Shared Use of the Krasnoyarsk Scientific Center, Siberian Branch, Russian Academy of Sciences. . - ISSN 1070-4272. - ISSN 1608-3296
РУБ Chemistry, Applied
Рубрики:
NANOPARTICLES
   PALLADIUM

   FULLERENE

   ELECTRODE

   NANOTUBES

   OXIDATION

Кл.слова (ненормированные):
carbon nanomaterials -- platinum metal nanoparticles -- in situ one-step method
Аннотация: Carbon nanomaterials (fullerite, detonation nanodiamonds, Taunit, fullerenol, fullerene-containing black) were decorated with platinum group metal nanoparticles in situ in one step by low-temperature combustion (~250–270°С) of a powdered mixture of platinum metal acetylacetonate [Pt-M(асас)n, Pt-М = Pt(II), Pd(II), Rh(III), Ir(III), acac = CH3COCHCOCH3, n is the oxidation state of Pt-М] with carbon nanomaterials in air. As shown by thermal analysis, the process is based on thermal oxidative degradation of the organometallic complex, catalyzed by carbon nanomaterials, with oxidation (combustion) of the organic moiety and release of the metal into the condensed phase. The thermal process in an open system occurs in the glowing mode (210–250°С); the size of the nanoparticles formed is 7–30 nm. Under the conditions restricting the air access to the reaction mixture and free outflow of gaseous products formed by oxidation of acac ligands, the nanoparticle size decreases to 3–10 nm. The particle size depends on the metal amount in the initial powder mixture and on the support morphology.

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Публикация на русском языке Декорирование порошков углеродных наноматериалов дисперсными частицами платиновых металлов [Текст] : статья / В. Г. Исакова [и др.] // Журн. прикл. химии. - 2018. - Т. 91 № 7. - С. 1040-1048

Держатели документа:
Russian Acad Sci, Kirenksy Inst Phys, Separate Dept, Fed Res Ctr,Krasnoyarsk Sci Ctr,Siberian Branch, Krasnoyarsk 660036, Russia.
Siberian Fed Univ, Krasnoyarsk 660041, Russia.
Russian Acad Sci, Fed Res Ctr, Krasnoyarsk Sci Ctr, Siberian Branch, Krasnoyarsk 660036, Russia.

Доп.точки доступа:
Isakova, V. G.; Исакова, Виктория Гавриловна; Osipova, I. V.; Осипова, Ирина Владимировна; Dudnik, A. I.; Дудник, Александр Иванович; Cherepakhin, A. V.; Черепахин, Александр Владимирович; Zharikova, N. V.; Nemtsev, I. V.; Volochaev, M. N.; Center for Shared Use of the Krasnoyarsk Scientific Center, Siberian Branch, Russian Academy of Sciences
}
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