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1.


   
    The study of Co/Cu multilayers by NMR method / D. L. Khalyapin [et al.] // Workshop "Trends in Nanomechanics and Nanoengineering" : book of abstracts / предс. сем. K. S. Aleksandrov ; зам. предс. сем.: G. S. Patrin, S. G. Ovchinnikov ; чл. лок. ком.: N. N. Kosyrev, A. S. Fedorov [et al]. - 2009. - P. 27

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Доп.точки доступа:
Aleksandrov, K. S. \предс. сем.\; Александров, Кирилл Сергеевич; Patrin, G. S. \зам. предс. сем.\; Патрин, Геннадий Семёнович; Ovchinnikov, S. G. \зам. предс. сем.\; Овчинников, Сергей Геннадьевич; Kosyrev, N. N. \чл. лок. ком.\; Косырев, Николай Николаевич; Fedorov, A. S. \чл. лок. ком.\; Федоров, Александр Семенович; Khalyapin, D. L.; Maltsev, V. K.; Мальцев, Вадим Константинович; Kim, P. D.; Ким, Пётр Дементьевич; Turpanov, I. A.; Турпанов, Игорь Александрович; Betenkova, A. Ya.; Бетенькова, Анна Яковлевна; "Trends in Nanomechanics and Nanoengineering", workshop(2009 ; Aug. ; 24-28 ; Krasnoyarsk); Сибирский федеральный университет; Институт физики им. Л.В. Киренского Сибирского отделения РАН
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2.


    Morozov, E. V.
    Temperature-Triggered Rearrangement of Asphaltene Aggregates as Revealed by Pulsed-Field Gradient NMR / E. V. Morozov, P. V. Yushmanov, O. N. Martyanov // Energy Fuels. - 2019. - Vol. 33, Is. 8. - P. 6934-6945, DOI 10.1021/acs.energyfuels.9b00600. - Cited References: 119. - This research was performed using the equipment of Krasnoyarsk Regional Research Equipment Centre of Siberian Branch of Russian Academy of Sciences with the financial support of Russian Science Foundation (Project No. 15-19-00119). . - ISSN 0887-0624. - ISSN 1520-5029
РУБ Energy & Fuels + Engineering, Chemical
Рубрики:
CRITICAL NANOAGGREGATE CONCENTRATION
   ELECTRON-SPIN-RESONANCE

Аннотация: The tendency of asphaltenes for aggregation followed by precipitation and deposition plays a crucial role in the petroleum industry since these processes present severe problems during the production, recovery, and processing of crude oils and fossil hydrocarbon feedstocks. The dynamics of oil asphaltene aggregates dissolved in chloroform at different concentrations varied in a wide range that was investigated at temperatures from 0 to 55 °C using the Pulsed-Field Gradient NMR technique. The components attributed to nanoaggregates and macroaggregates were successfully resolved, which allowed us to measure their diffusion coefficients. The diffusion coefficients for all types of aggregates grow as the asphaltene concentration decreases, whereas the partial weight of the aggregates increases with the increase of asphaltene concentration. The difference in diffusion behavior of the aggregates of different types was registered when passing the critical concentration range 10–20 g/L. The nano- and macroaggregates behave independently when the asphaltene concentration is higher than 20 g/L (concentrated regime), while below 20 g/L (semidiluted regime) the components related to the different types of aggregates cannot be properly resolved. It was found that regardless of the asphaltene concentration, the diffusion coefficients for nano- and macroaggregates demonstrate similar temperature behavior giving the straight lines in the Arrhenius coordinates which change their slopes when passing the temperature range 20–30 °C. The phenomenon evidences the thermally induced cleavage of noncovalent bonds with subsequent rearrangement of asphaltene aggregates that is observed for all concentration regimes covering the existence of asphaltene aggregates of all types. The data obtained are well consistent with the modern concept of asphaltene aggregate structure and fairly agree with the data obtained earlier. We believe these results will contribute essentially to a better understanding of the fundamental behavior of asphaltenes and their aggregates, providing a deep insight into aggregate transformation triggered by the temperature.

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Держатели документа:
SB RAS, Inst Chem & Chem Technol, Fed Res Ctr, Krasnoyarsk Sci Ctr, Akademgorodok 50-24, Krasnoyarsk 660036, Russia.
SB RAS, Kirensky Inst Phys, Fed Res Ctr, Krasnoyarsk Sci Ctr, Akademgorodok 50-38, Krasnoyarsk 660036, Russia.
Russian Acad Sci, Siberian Branch, Boreskov Inst Catalysis, Ak Lavrentieva 5, Novosibirsk 630090, Russia.
P&L Sci Instrument Serv, Box 1241, S-18124 Lidingo, Sweden.
Novosibirsk State Univ, Pirogova Str 2, Novosibirsk 630090, Russia.

Доп.точки доступа:
Yushmanov, Pavel, V; Martyanov, Oleg N.; Морозов, Евгений Владимирович; Russian Science FoundationRussian Science Foundation (RSF) [15-19-00119]
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3.


   
    Investigation of Re-Pt vinylidene complexCp(CO)2RePt(μ-C=CHPh)(PPh3)2 by solid-state NMR / K. T. Smolyarov, A. N. Matsulev, A. A. Kondrasenko // Magnetic Resonance and its Applications : Proceedings 16th International School-Conference. - 2019. - P268-270

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Держатели документа:
Institute of Chemistry and Chemical Technology, Federal Research Center KSC SB RAS
Kirensky Institute of Physics, Federal Research Center KSC SB RAS

Доп.точки доступа:
Smolyarov, K. T.; Matsulev, A.N.; Kondrasenko, A. A.; Magnetic Resonance and its Applications, International School-Conference(16 ; 2019 ; 31 March - 5 Apr. ; Saint Petersburg); Санкт-Петербургский государственный университет
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4.


   
    The comparative analysis of the solid-state 31P NMR spectra of Re-Pt vinylidene complexes / K. T. Smolyarov [et al.] // J. Phys. Conf. Ser. - 2019. - Vol. 1399. - Ст. 022028, DOI 10.1088/1742-6596/1399/2/022028. - Cited References: 11 . - ISSN 1742-6588. - ISSN 1742-6596
Рубрики:
Applied Physics
Аннотация: The two vinylidene complexes Cp(CO)2 RePt(μ-C=CHPh)(PPh3 )(CO) and Cp(CO)2 RePt(μ-C=CHPh)(PPh3 )2 and their precursors PPh3 and P(PPh3 )4 were studied by solid-state nuclear magnetic resonance. We analysed 31P cross-polarization spectra acquired in static conditions and with magic angle spinning. The chemical shift tensors of each sample were determined by fitting their spectra using SIMPSON simulations.

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Держатели документа:
Federal Research Center "Krasnoyarsk Science Center of the Siberian Branch of the Russian Academy of Sciences" (KSC SB RAS), Krasnoyarsk, Russia
Kirensky Institute of Physics SB RAS, Krasnoyarsk, Russia
Institute of Chemistry and Chemical Technology SB RAS, Krasnoyarsk, Russia
Siberian Federal University, Krasnoyarsk, Russia

Доп.точки доступа:
Smolyarov, K. T.; Volkov, N. V.; Matsulev, A. N.; Kondrasenko, A. A.; Кондрасенко, Александр Александрович; International Scientific Conference "Conference on Applied Physics, Information Technologies and Engineering"(25-27 September 2019 ; Krasnoyarsk, Russian Federation)
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5.


   
    A comparative study of the structure of copper and lead xanthates / S. A. Vorobyev [et al.] // J. Struct. Chem. - 2017. - Vol. 58, Is. 6. - P. 1144-1151, DOI 10.1134/S0022476617060117. - Cited References: 38 . - ISSN 0022-4766
Кл.слова (ненормированные):
copper xanthate -- lead xanthate -- dixanthogen -- structure -- XPS -- EXAFS -- solid state NMR
Аннотация: XPS, PbL3 and CuK EXAFS, solid state NMR, and EPR techniques are used to study insoluble products formed in the interaction of aqueous solutions of lead(II) nitrate and copper (II) sulfate with potassium nbutylxanthate (KX). The XPS spectra of lead xanthates with the composition PbX2 are similar to those of KX, and interatomic distances of 0.279 nm suggest a nearly ionic character of Pb–S bonds. In copper xanthate precipitating together with dixanthogen (approximately 15 wt.%), the Cu(I)–S bond length is smaller (0.229 nm), and copper coordination number of 2.9 in a composite with dixanthogen increases to 3.3 after its removal by washing with acetone. The XPS spectra indicate the covalent character of the bond and non-equivalence of xanthate radicals. Solid state 1H and 13C NMR spectra as well as the actual absence of metal lines under the measurement conditions demonstrate strong disordering of the structure of xanthates, which is stronger for PbX2 and weakest in CuX after the removal of dixanthogen. EPR reveals sulfur-containing radicals and Cu2+ in CuX, however, their amounts are insignificant and decrease after the washing with acetone. The results of the work are significant for the understanding of the reactivity of xanthates, in particular, under the conditions of flotation of base metal ores.

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Публикация на русском языке Сравнительное исследование структуры ксантогенатов меди и свинца [Текст] / C. А. Воробьев [и др.] // Журн. структ. химии. - 2017. - Т. 58 № 6. - С. 1191-1198

Держатели документа:
Institute of Chemistry and Chemical Technology, Siberian Branch, Russian Academy of Sciences, Krasnoyarsk, Russian Federation
Siberian Federal University, Krasnoyarsk, Russian Federation
Nikolaev Institute of Inorganic Chemistry, Siberian Branch, Russian Academy of Sciences, Novosibirsk, Russian Federation
Kirensky Insitute of Physics, Siberian Branch, Russian Academy of Sciences, Krasnoyarsk, Russian Federation

Доп.точки доступа:
Vorobyev, S. A.; Saikova, S. V.; Erenburg, S. B.; Trubina, S. V.; Ivanov, Y. N.; Иванов, Юрий Николаевич; Maksimov, N. G.; Mikhlin, Y. L.
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6.


    Zobov, V. E.
    On the effect of an inhomogeneous magnetic field and many-body localization on the increase in the second moment of multiple-quantum NMR with time / V. E. Zobov, A. A. Lundin // JETP Letters. - 2017. - Vol. 105, Is. 8. - P. 514-518, DOI 10.1134/S0021364017080148. - Cited References: 27 . - ISSN 0021-3640
Аннотация: A change in the time dependence of the second moment of the distribution of intensities of coherences with various orders in the spectrum of multiple-quantum NMR in a solid at the inclusion of an inhomogeneous magnetic field in the effective interaction is studied. Both the secular dipole–dipole and nonspecular twoquantum interactions are considered as nucleus–nucleus interactions, which correspond to traditional experimental realizations. It is shown that, with an increase in the magnitude of the inhomogeneous field, an exponential increase in the second moment of multiple-quantum NMR with time changes to a power-law increase. The results obtained in this work indicate that this second moment, which determines the average number of dynamically correlated spins, can be used as a convenient characteristic for studying a transition to a many-body localized state. © 2017, Pleiades Publishing, Inc.

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Публикация на русском языке Зобов, Владимир Евгеньевич. О влиянии неоднородного магнитного поля и многочастичной локализации на рост со временем второго момента многоквантового ЯМР [Текст] / В. Е. Зобов, А. А. Лундин // Письма в Журн. эксперим. и теор. физ. : Наука, 2017. - Т. 105 Вып. 7-8. - С. 499-503

Держатели документа:
Kirensky Institute of Physics, Federal Research Center KSC, Siberian Branch, Russian Academy of Sciences, Krasnoyarsk, Russian Federation
Semenov Institute of Chemical Physics, Russian Academy of Sciences, Moscow, Russian Federation

Доп.точки доступа:
Lundin, A. A.; Зобов, Владимир Евгеньевич
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7.


   
    NMR imaging of 3D printed biocompatible polymer scaffolds interacting with water / E. Morozov [et al.] // Rapid Prototyping J. - 2019. - Vol. 25, Is. 6. - P. 1007-1016, DOI 10.1108/RPJ-10-2018-0271. - Cited References: 60. - This research was performed on the equipment of Krasnoyarsk Regional Research Equipment Center of Siberian Branch of Russian Academy of Sciences with the financial support of Russian Foundation for Basic Research (project No14-29-10178 ofi_m). . - ISSN 1355-2546
Кл.слова (ненормированные):
NMR imaging -- Stereolithography -- Chitosan -- Polymer scaffolds -- Tissue engineering
Аннотация: Purpose: Active employment of additive manufacturing for scaffolds preparation requires the development of advanced methods which can accurately characterize the morphologic structure and its changes during an interaction of the scaffolds with substrate and aqueous medium. This paper aims to use the method of nuclear magnetic resonance (NMR) imaging for preclinical characterization of 3D-printed scaffolds based on novel allyl chitosan biocompatible polymer matrices. Design/methodology/approach: Biocompatible polymer scaffolds were fabricated via stereolithography method. Using NMR imaging the output quality control of the scaffolds was performed. Scaffolds stability, polymer matrix homogeneity, kinetic of swelling processes, water migration pathways within the 3D-printed parts, effect of post-print UV curing on overall scaffolds performance were studied in details. Findings: NMR imaging visualization of water uptake and polymer swelling processes during the interaction of scaffolds with aqueous medium revealed the formation of the fronts within the polymer matrices those dynamics is governed by case I transport (Fickian diffusion) of the water into polymer network. No significant difference was observed in front propagation rates along the polymer layers and across the layers stack. After completing the swelling process, the polymer scaffolds retain their integrity and no internal defects were detected. Research limitations/implications: NMR imaging revealed that post-print UV curing aimed to improve the overall performance of 3D-printed scaffolds might not provide a better quality of the finish product, as this procedure apparently yield strongly inhomogeneous distribution of polymer crosslink density which results in subsequent inhomogeneity of water ingress and swelling processes, accompanied by stress-related cracks formation inside the scaffolds. Practical implications: This study introduces a method which can successfully complement the standard tests which now are widely used in either additive manufacturing or scaffolds engineering. Social implications: This work can help to improve the overall performance of the polymer scaffolds used in tissue engineering. Originality/value: The results of this study demonstrate feasibility of NMR imaging for preclinical characterization of 3D printed biocompatible polymer scaffolds. The results are believed to contribute to better understanding of the processes vital for improving the design of 3D-printed polymer scaffolds. © 2019, Emerald Publishing Limited.

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Держатели документа:
Federal Research Center, Krasnoyarsk Scientific Center SB RAS”, Institute of Chemistry and Chemical Technology, Krasnoyarsk, Russian Federation
Federal Research Center “Crystallography and Photonics RAS”, Institute on Laser and Information Technologies, Shatura, Russian Federation
All-Russian Scientific Research Institute of Aviation Materials, Moscow, Russian Federation
Kurnakov Institute of General and Inorganic Chemistry RAS, Moscow, Russian Federation
Federal Research Center “Krasnoyarsk Scientific Center SB RAS”, Kirensky Institute of Physics, Krasnoyarsk, Russian Federation

Доп.точки доступа:
Morozov, E. V.; Морозов, Евгений Владимирович; Novikov, M.; Bouznik, V.; Yurkov, G.
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8.


    Lundin, A. A.
    Asymptotic similarity of time correlation functions and shape of the 13C and 29Si NMR spectra in diamond and silicon / A. A. Lundin, V. E. Zobov // J. Exp. Theor. Phys. - 2018. - Vol. 127, Is. 2. - P. 305-315, DOI 10.1134/S1063776118080216. - Cited References: 47. - We thank V.A. Atsarkin, V.V. Demidov, F.S. Dzheparov, and E. B. Feldman for the discussion of our results. This work was supported by a subsidy allocated by the Institute of Chemical Physics of the Russian Academy of Science for the State assignment, theme 0082-2018-0005, code TSITIS AAAA-A18-118020690203. . - ISSN 1063-7761. - ISSN 1090-6509
Рубрики:
SPIN SYSTEMS
   LINE-SHAPES

   RELAXATION

   SOLIDS

   PARAMAGNETS

   RESONANCE

Аннотация: Based on the proposed theory, we have investigated the shape of the NMR absorption spectra for 13C and 29Si nuclei in diamond and silicon crystals attributable to the internuclear dipole–dipole interaction. In accordance with the available experimental data, we have considered both crystals with a 100% content of magnetoactive isotopes and crystals with a comparatively low dilution by nonmagnetic nuclei. The time correlation functions (the first of which is the Fourier transform of the NMR spectrum) arising in an infinite chain of coupled differential equations are shown to be mutually similar with a slight time delay. The proposed theory allows the spectrum to be calculated analytically. The results obtained agree satisfactorily with the experimental ones. It is noted that the mutual similarity of the time correlation functions is probably a corollary of the development of dynamical chaos in the system.

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Публикация на русском языке Лундин, Андрей Арнольдович. Асимптотическое подобие временных корреляционных функций и форма спектров ЯМР 13C и 29Si в алмазе и кремнии [Текст] / А. А. Лундин, В. Е. Зобов // Журн. эксперим. и теор. физ. - 2018. - Т. 154 Вып. 2. - С. 354–367

Держатели документа:
Russian Acad Sci, Semenov Inst Chem Phys, Vorobevskoe Sh 26, Moscow 117977, Russia.
Russian Acad Sci, Kirensky Inst Phys, Fed Res Ctr, Krasnoyarsk Sci Ctr,Siberian Branch, Akademgorodok 50, Krasnoyarsk 660036, Russia.

Доп.точки доступа:
Zobov, V. E.; Зобов, Владимир Евгеньевич; Institute of Chemical Physics of the Russian Academy of Science [0082-2018-0005, TSITIS AAAA-A18-118020690203]
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9.


    Zobov, V. E.
    Effect of degradation processes caused by a small perturbation on the growth of the average cluster size of correlated spins in multiple quantum NMR spectroscopy of solids / V. E. Zobov, A. A. Lundin // Appl. Magn. Reson. - 2021. - Vol. 52. Is. 7. - P. 879–892, DOI 10.1007/s00723-021-01342-1. - Cited References: 33. - The study is funded by the Ministry of Science and Higher Education of the Russian Federation in the framework of the State assignment, State registration number AAAA-A19-119012890064-7 . - ISSN 0937-9347
   Перевод заглавия: Влияние процессов деградации, вызванных малым возмущением, на рост среднего размера кластера коррелированных спинов в многоквантовой ЯМР спектроскопии твердых тел
Кл.слова (ненормированные):
Nuclear magnetic resonance spectroscopy -- Average size -- Cluster sizes -- Degradation process -- Multiple quantum NMR spectroscopy -- Orthogonal operators -- Over-complete -- Small perturbations -- Velocity ratio -- Cluster analysis
Аннотация: Multiple quantum (MQ) NMR spectroscopy of solids allows one to observe the growth and decay of multispin correlations. As a rule, the average size of the cluster of correlated spins is extracted from the width of the MQ spectrum. In the present article, the size distribution of such clusters is explored. To obtain the above distribution, the solutions for the amplitudes of the decomposition over complete sets of orthogonal operators for the two different models were used. By means of these models, we have taken into account the dependence of cluster degradation (the degradation of a cluster means, e.g., destruction of correlations in cluster or loss of particles in it) through two positions. The first one defines by the cluster size while the second one depends on the MQ coherence order of the cluster. It is shown that in dependence of the relation the rates of these degradation processes, the width of the MQ spectrum carries different information. If the first process is faster that the second one, then the width of the MQ spectrum is still determined by the average cluster size. When the velocity ratio becomes inverse, the width of the MQ spectrum takes on a smaller value, which is a consequence of the faster degradation of the MQ spectrum components with large orders of coherence.

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Держатели документа:
Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, 660036, Russian Federation
Semenov Institute of Chemical Physics, Russian Academy of Sciences, Moscow, 117977, Russian Federation

Доп.точки доступа:
Lundin, A. A.; Зобов, Владимир Евгеньевич
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10.


   
    Polymorphs of Rb3ScF6: X-ray and Neutron Diffraction, Solid-State NMR, and Density Functional Theory Calculations Study / A. Rakhmatullin, M. S. Molokeev, G. King [et al.] // Inorg. Chem. - 2021. - Vol. 60, Is. 8. - P. 6016-6026, DOI 10.1021/acs.inorgchem.1c00485. - Cited References: 43. - For DFT calculations, we thank the “Centre de Calcul Scientifique en region Centre” (Orléans, France). We acknowledge the Interface, Confinement, Materials and Nanostructures (Orléans, France) for access to their transmission electron microscope. Financial support from the IR-RMN-THC Fr3050 CNRS for conducting the research is gratefully acknowledged. This study was also financially supported by VEGA-2/0060/18 and ITMS project (code 313021T081, Research & Innovation Operational Programme funded by the ERDF). We thank also Dr. F. Vivet, Dr. F. Fayon, and Dr. D. Massiot for useful discussions . - ISSN 0020-1669
   Перевод заглавия: Полиморфы Rb3ScF6: рентгеновская дифракция и нейтронная дифракция, ЯМР и расчет функциональной теории плотности
Аннотация: The crystal structures of three polymorphs of Rb3ScF6 have been determined through a combination of synchrotron, laboratory X-ray, and neutron powder diffraction, electron diffraction, and multinuclear high-field solid-state NMR studies. The room temperature (RT; α) and medium-temperature (β) structures are tetragonal, with space groups I41/a (Z = 80) and I4/m (Z = 10) and lattice parameters a = 20.2561(4) Å, c = 36.5160(0) Å and a = 14.4093(2) Å, c = 9.2015(1) Å at RT and 187 °C, respectively. The high-temperature (γ) structure is cubic space group Fm3̅m (Z = 4) with a = 9.1944(1) Å at 250 °C. The temperatures of the phase transitions were measured at 141 and 201 °C. The three α, β, and γ Rb3ScF6 phases are isostructural with the α, β, and δ forms of the potassium cryolite. Detailed structural characterizations were performed by density functional theory as well as NMR. In the case of the β polymorph, the dynamic rotations of the ScF6 octahedra of both Sc crystallographic sites have been detailed.

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Conditions Extremes et Materiaux: Haute Temperature et Irradiation, CEMHTI, UPR 3079, CNRS, Universite Orleans, Orleans, 45071, France
Laboratory of Crystal Physics, Kirensky Institute of Physics, Federal Research Center Krasnoyarsk Science Center, Siberian Branch, Russian Academy of Sciences, Krasnoyarsk, 660036, Russian Federation
Siberian Federal University, Krasnoyarsk, 660041, Russian Federation
Material and Chemical Sciences, Canadian Light Source, 44 Innovation Boulevard, Saskatoon, SK S7N 2V3, Canada
Department of Rare Metals and Nanomaterials, Institute of Physics and Technology, Ural Federal University, 19 Mira strasse, Ekaterinburg, 620002, Russian Federation
Institut Laue-Langevin, Grenoble 9F-38042, France
Department of Technology of Mechanical Engineering and Instrument Making, Votkinsk Branch, Kalashnikov Izhevsk State Technical University, 1 Shuvalova Strasse, Votkinsk, 427000, Russian Federation
Institute of Inorganic Chemistry, Slovak Academy of Sciences, Dubravska cesta 9, Bratislava, 84536, Slovakia
Centre of Excellence for Advanced Materials Application, CEMEA, Slovak Academy of Sciences, Dubravska cesta 5807/9, Bratislava, 84511, Slovakia

Доп.точки доступа:
Rakhmatullin, A.; Molokeev, M. S.; Молокеев, Максим Сергеевич; King, G.; Polovov, I. B.; Maksimtsev, K. V.; Chesneau, E.; Suard, E.; Bakirov, R.; Simko, F.; Bessada, C.; Allix, M.
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11.


    Zobov, V. E.
    On the control of the spread of quantum information in multiple quantum NMR spectroscopy of solids / V. E. Zobov, A. A. Lundin // Proceedings of the International Conference "Micro- and Nanoelectronics – 2021". ICMNE – 2021 : book of abstracts : Oct. 4-8, 2021, Moscow - Zvenigorod, Russia. - 2021. - Ст. q3-02. - P. 149. - Cited References: 5
   Перевод заглавия: О контроле распространением квантовой информации в многоквантовой ЯМР спектроскопии твердых тел

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Доп.точки доступа:
Lundin, A. A.; Лундин, Андрей Арнольдович; Зобов, Владимир Евгеньевич; "Micro- and Nano-Electronics", International Conference(2021 ; Oct. ; Zvenigorod); "Микро- и наноэлектроника", международная конференция(2021 ; окт. ; Звенигород); Квантовая информатика, симпозиум(2021 ; окт. ; Звенигород)Российская академия наук; Физико-технологический институт имени К.А. Валиева РАН
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12.


   
    NMR investigation of transitions in CsLiNO4 csystal / K. S. Aleksandrov, Yu. N. Ivanov, E. P. Zeer, A. I. Kruglik // Sixth European meeting on ferroelectrisity : abstracts. - Poznan, 1987. - P. 191

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Доп.точки доступа:
Aleksandrov, K. S.; Александров, Кирилл Сергеевич; Ivanov, Yu. N.; Иванов, Юрий Николаевич; Zeer, E. P.; Зеер, Эвальд Петрович; Kruglik, A. I.; Круглик, Анатолий Иванович; European meeting on ferroelectricity(6 ; 1987 ; Sept. 7-11 ; Poznan, Poland)
}
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13.


   
    Chemistry of vinylidene complexes. XXV. Synthesis and reactions of binuclear µ-vinylidene RePt complexes containing phosphite ligands. Spectroscopic, structural and electrochemical study / O. S. Chudin, V. V. Verpekin, A. A. Kondrasenko [et al.] // Inorg. Chim. Acta. - 2020. - Vol. 505. - Ст. 119463, DOI 10.1016/j.ica.2020.119463. - Cited References: 56. - This work was conducted within the framework of the budget project AAAA-A17-117021310221-7 for Institute of Chemistry and Chemical Technology SB RAS using the equipment of Krasnoyarsk Regional Research Equipment Centre of SB RAS . - ISSN 0020-1693
Кл.слова (ненормированные):
Vinylidene complexes -- Rhenium -- Platinum -- NMR -- X-ray diffraction -- Redox properties
Аннотация: Reactions of Cp(CO)2ReCCHPh with Pt[P(OR)3]4 (R = Pri, Et, Ph) gave binuclear μ-vinylidene complexes Cp(CO)2RePt(μ-CCHPh)[P(OR)3]2. Treatment of the previously synthesized Cp(CO)2Re(μ-CCHPh)Pt(PPh3)2 with triisopropylphosphite or triethylphosphite resulted in a stepwise substitution of PPh3 ligands, leading to the disubstituted Cp(CO)2RePt(μ-CCHPh)[P(OR)3]2 and monosubstituted Cp(CO)2RePt(μ-CCHPh)[P(OR)3](PPh3) (R = Pri or Et) species, while no triphenylphosphine ligand substitution in the reaction with P(OPh)3 occurs at all. The monosubstituted Cp(CO)2RePt(μ-CCHPh)[P(OR)3](PPh3) (R = Pri, Et, Ph) species were also obtained by reacting Cp(CO)2ReCCHPh with mixed-ligand complexes Pt(PPh3)3L (L = P(OPri)3, P(OEt)3, P(OPh)3). Reactions of Cp(CO)2RePt(μ-CCHPh)LL′ (L = L′ = P(OPri)3, P(OEt)3, P(OPh)3; L = P(OPri)3, P(OEt)3, P(OPh)3, L′ = PPh3) with Co2(CO)9 yield tricarbonyl vinylidene species Cp(CO)2RePt(μ-CCHPh)[P(OR)3](CO) (R = Pri, Et, Ph). The obtained compounds were characterized by IR and 1H, 13C, 31P NMR spectroscopy. The molecular structures of Cp(CO)2RePt(μ-CCHPh)[P(OPri)3]2, Cp(CO)2RePt(μ-CCHPh)[P(OPri)3](PPh3) and Cp(CO)2RePt(μ-CCHPh)[P(OPri)3](CO) were determined by X-ray diffraction study. The redox properties of the new complexes and their reactions of chemical oxidation were studied.

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Держатели документа:
Institute of Chemistry and Chemical Technology SB RAS, Federal Research Center “Krasnoyarsk Science Center SB RAS”, Akademgorodok, 50-24, Krasnoyarsk, 660036, Russian Federation
Siberian Federal University, Svobodny Prospect, 79, Krasnoyarsk, 660041, Russian Federation
Nikolaev Institute of Inorganic Chemistry, Siberian Branch of the Russian Academy of Sciences, Acad. Lavrentiev Ave., 3, Novosibirsk, 630090, Russian Federation
Novosibirsk State University, 2 Pirogova Str., Novosibirsk, 630090, Russian Federation
Institute of Physics SB RAS, Federal Research Center “Krasnoyarsk Science Center SB RAS”, Akademgorodok, 50-38, Krasnoyarsk, 660036, Russian Federation

Доп.точки доступа:
Chudin, O. S.; Verpekin, V. V.; Kondrasenko, A. A.; Burmakina, G. V.; Piryazev, D. A.; Vasiliev, A. D.; Васильев, Александр Дмитриевич; Pavlenko, N. I.; Zimonin, D. V.; Rubaylo, A. I.
}
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14.


    Lundin, A. A.
    Multiple-quantum NMR spectroscopy and quantum information delocalization in solids in the presence of magnetic fields inhomogeneities / A. A. Lundin, V. E. Zobov // International Conference “Magnetic Resonance – Current State and Future Perspectives” (EPR-75) : book of abstracts. - Kazan, 2019. - P. 30. - Cited References: 5

Материалы конференции,
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Держатели документа:
N.N. Semenov Institute of Chemical Physics, RAS
Kirensky Institute of Physics, Federal Research Center KSC SB RAS, Krasnoyarsk, Russia

Доп.точки доступа:
Zobov, V. E.; Зобов, Владимир Евгеньевич; Лундин, Андрей Арнольдович; "Magnetic Resonance - Current State and Future Perspectives", International Conference(2019 ; Sept. ; 23-27 ; Kazan, Russia); Казанский (Приволжский) федеральный университет; Казанский физико-технический институт им. Е. К. Завойского Казанского научного центра РАН
}
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15.


   
    МРТ исследование процессов замерзания воды и таяния льда в полимерных композиционных мембранах / Е. В. Морозов, Е. Н. Больбасов, С. И. Горенинский [и др.] // Полимер. матер. и технол. - 2020. - Т. 6, № 4. - С. 20-29, DOI 10.32864/polymmattech-2020-6-4-20-29. - Библиогр.: 23 . - ISSN 2415-7260
   Перевод заглавия: NMR imaging study of water freezing and ice thawing in polymer composite membranes
Кл.слова (ненормированные):
магнитно-резонансная томография -- полимеры -- мембраны -- электроформование -- влагопоглощение -- замерзание -- таяние -- NMR imaging -- polymers -- membranes -- electrospinning -- water sorption -- freezing -- thawing
Аннотация: Полимерные композиционные мембраны, полученные методом электроформования, находят широкое применение в различных отраслях промышленности благодаря своей структуре и уникальным свойствам. Однако, вследствие высокой сорбционной активности изделия на основе таких мембран подвержены негативному влиянию атмосферной влаги в условиях знакопеременного температурного воздействия. В данной работе представлены новые полимерные композиционные мембраны с улучшенными водоотталкивающими свойствами, сочетающие слои гидрофобных и гидрофильных волокнистых материалов. Впервые проведены МРТ исследования процессов замерзания воды и таяния льда в них. Детально изучены качественная и количественная стороны протекающих процессов. Обнаружено, что водопоглощение в композиционных мембранах осуществляется исключительно за счет слоев гидрофильного материала. Исследование также показало, что скорость протекания процессов замерзания/таяния оказалась чувствительна к присутствию гидрофобных слоев: обнаружено, что введение слоев гидрофобных волокон в композит приводит к существенному снижению скорости замерзания и таяния. Полученный результат демонстрирует возможности метода МРТ для исследования и диагностики полимерных волокнистых материалов и процессов замерзания/таяния в них, а также показывает пути оптимизации свойств готовых полимерных материалов для арктических и иных практических приложений.
Electrospun polymer composite membranes are very attractive for many industrial applications due to their special structure and properties. However, high sorption capacity of fibrous material results in noticeable moisture content in the membranes which then, being exposed to natural environment, suffer from the freeze/thawing cycling. In this work, the new polymer composite membranes with advanced water resistance due to a layered hydrophobic/hydrophilic structure were manufactured via electrospinning. Using these membranes the NMR imaging study of water freezing and ice thawing were carried out for the first time. In result, the qualitative and quantitative character of the processes was elucidated. Thus, it was found out that the water uptake in membranes occurs solely due to the hydrophilic layers. From the other hand, the hydrophobic layers play a major role, affecting the rate of freeze/thawing: introduction the hydrophobic material into membranes structure makes the freeze/thawing front propagation slow down. The results obtained demonstrate the advantages of the NMR imaging as a tool for studying and control of the polymer fibrous materials, processes of water sorption and water freezing/thawing occurring under the natural environment conditions. New results also show the routes of polymer materials optimization for arctic and other practical applications.

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Держатели документа:
Институт химии и химической технологии СО РАН, ФИЦ «Красноярский научный центр СО РАН», Академгородок, 50/24, 660036, г.Красноярск, Россия
Институт физики имени Л. В. Киренского СО РАН, ФИЦ «Красноярский научный центр СО РАН», Академгородок, 50/38, 660036, г.Красноярск, Россия
Национальный исследовательский Томский политехнический университет, пр-т Ленина, 30, 634050, г.Томск, Россия
Институт оптики атмосферы имени В. Е. Зуева СО РАН, площадь академика Зуева, 1, 634055, г.Томск, Россия
Институт общей и неорганической химии имени Н. С. Курнакова РАН, Ленинский пр-т, 31, 119991, г.Москва, Россия
Всероссийский научно-исследовательский институт авиационных материалов, ул. Радио, 17, 105005, г.Москва, Россия
Томский государственный университет, пр-т Ленина, 36, 634050, г.Томск, Россия

Доп.точки доступа:
Морозов, Евгений Владимирович; Morozov, E. V.; Больбасов, Е. Н.; Горенинский, С. И.; Юрков, Г. Ю.; Бузник, Вячеслав Михайлович
}
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16.


    Zobov, V. E.
    Reversible and Irreversible propagation of quantum information and its manifestation in multiple-quantum NMR spectra in solids / V. E. Zobov, A. A. Lundin // J. Exp. Theor. Phys. - 2020. - Vol. 131, Is. 2. - P. 273-279, DOI 10.1134/S1063776120060096. - Cited References: 33. - This work was supported by the Ministry of Science and Higher Education of the Russian Federation within the State Task 0082-2019-0001 (State Registration Number AAAA-A19-119012890064-7) . - ISSN 1063-7761. - ISSN 1090-6509
Рубрики:
DYNAMICS
   LOCALIZATION

   SIMULATIONS

   COHERENCES

Аннотация: On the basis of the earlier developed statistical theory of the growth of the effective size of correlated clusters (the number of correlated spins), an expression for the shape of the multiple-quantum (MQ) NMR spectrum is obtained that takes into account the loss of coherence in a spin system due, for example, to the controlled intervention of the experimenter. It is shown that the scrambling and decoherence processes in the MQ spectrum of the multiparticle system of a solid are not separated, unlike the corresponding spectra of some large isolated molecules [27] in a solution. The relations obtained allow one to extract the necessary information about the above processes (scrambling and decoherence) from the dependence of the MQ spectra on experimental parameters.

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Публикация на русском языке Зобов, Владимир Евгеньевич. Обратимое и необратимое распространение квантовой информации и проявление его в спектрах многоквантового ЯМР в твердом теле [Текст] / В. Е. Зобов, А. А. Лундин // Журн. эксперим. и теор. физ. - 2020. - Т. 158 Вып. 2. - С. 300-308

Держатели документа:
RAS, Fed Res Ctr, Kirensky Inst Phys, KSC,SB, Krasnoyarsk 660036, Russia.
Russian Acad Sci, Semenov Inst Chem Phys, Moscow 117977, Russia.

Доп.точки доступа:
Lundin, A. A.; Зобов, Владимир Евгеньевич; Ministry of Science and Higher Education of the Russian Federation [0082-2019-0001, AAAA-A19-119012890064-7]
}
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17.


   
    Thermal, optical, and dielectric properties of Fluoride Rb2TaF7 / E. I. Pogorel'tsev [et al.] // Phys. Solid State. - 2017. - Vol. 59, Is. 5. - P. 986-991, DOI 10.1134/S1063783417050250. - Cited References:21. - The reported study was funded by the Russian Foundation for Basic Research, Government of Krasnoyarsk Territory, Krasnoyarsk Region Science and Technology Support Fund to the research project no. 16-42-243001. . - ISSN 1063-7834. - ISSN 1090-6460
РУБ Physics, Condensed Matter
Рубрики:
PHASE-TRANSITIONS
   X-RAY

   DISORDER

   NMR

   DIFFRACTION

   OXYFLUORIDE

Аннотация: The thermal, optical, and dielectric properties of fluoride Rb2TaF7 were investigated. It was observed that the variation in chemical pressure in fluorides A2+TaF7 caused by the cation substitution of rubidium for ammonium does not affect the ferroelastic nature of structural distortions, but leads to stabilization of the high- and low-temperature phases and enhancement of birefringence. The entropy of the phase transition P4/nmm ↔ Cmma is typical of the shift transformations, which is consistent with a model of the initial and distorted phase structures. The anisotropy of chemical pressure causes the change of signs of the anomalous strain and baric coefficient dT/dp of Rb2TaF7 as compared with the values for its ammonium analog.

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Публикация на русском языке Тепловые, оптические и диэлектрические свойства Rb2TaF7 [Текст] / Е. И. Погорельцев [и др.] // Физ. тверд. тела : Наука, 2017. - Т. 59 Вып. 5. - С. 959-964

Держатели документа:
Russian Acad Sci, Kirensky Inst Phys, Siberian Branch, Fed Res Ctr, Krasnoyarsk 660036, Russia.
Siberian Fed Univ, Krasnoyarsk 660041, Russia.
Krasnoyarsk State Pedag Univ, Krasnoyarsk 660060, Russia.
Russian Acad Sci, Inst Chem, Far East Branch, Vladivostok 690022, Russia.

Доп.точки доступа:
Pogorel'tsev, E. I.; Погорельцев, Евгений Ильич; Mel'nikova, S. V.; Мельникова, Светлана Владимировна; Kartashev, A. V.; Карташев, Андрей Васильевич; Gorev, M. V.; Горев, Михаил Васильевич; Flerov, I. N.; Флёров, Игорь Николаевич; Laptash, N. M.; Russian Foundation for Basic Research, Government of Krasnoyarsk Territory, Krasnoyarsk Region Science and Technology Support Fund [16-42-243001]
}
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18.


   
    SE-77 HIGH-RESOLUTION NMR-STUDY OF FERROELECTRIC TRANSITION IN AMMONIUM HYDROGEN SELENATE / I. P. ALEKSANDROVA [и др.] // Fiz. Tverd. Tela. - 1982. - Vol. 24, Is. 6. - P. 1677-1680. - Cited References: 12 . - ISSN 0367-3294
РУБ Physics, Condensed Matter


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Доп.точки доступа:
ALEKSANDROVA, I. P.; ROZANOV, O. V.; SUKHOVSKII, A. A.; MOSKVICH, Y. N.
}
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19.


    MALTSEV, V. K.
    SECONDARY NUCLEAR ECHO SIGNALS DURING THE COMBINATION OF NMR AND FMR / V. K. MALTSEV, A. E. REINGARDT, V. I. TSIFRINOVICH // Fiz. Tverd. Tela. - 1982. - Vol. 24, Is. 1. - P. 3-8. - Cited References: 16 . - ISSN 0367-3294
РУБ Physics, Condensed Matter


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Доп.точки доступа:
REINGARDT, A. E.; TSIFRINOVICH, V. I.
}
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20.


    TSIFRINOVICH, V. I.
    DYNAMIC NMR FREQUENCY-SHIFT IN THE INVERTED STATE / V. I. TSIFRINOVICH // Zhurnal Eksperimentalnoi Teor. Fiz. - 1982. - Vol. 83, Is. 2. - P. 715-717. - Cited References: 5 . - ISSN 0044-4510
РУБ Physics, Multidisciplinary


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}
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