Výsledky vyhledávání - "КИСЛОРОДНАЯ НЕСТЕХИОМЕТРИЯ"

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    Přispěvatelé: A. L. Gurskii N. A. Kalanda M. V. Yarmolich a další

    Zdroj: Izvestiya Vysshikh Uchebnykh Zavedenii. Materialy Elektronnoi Tekhniki = Materials of Electronics Engineering; Том 26, № 1 (2023); 5-16 ; Известия высших учебных заведений. Материалы электронной техники; Том 26, № 1 (2023); 5-16 ; 2413-6387 ; 1609-3577 ; 10.17073/1609-3577-2023-1

    Popis souboru: application/pdf

    Relation: https://met.misis.ru/jour/article/view/506/406; Goodenough J.B. Electronic and ionic transport properties and other physical aspects of perovskites. Reports on Progress in Physics. 2004; 67: 1915—1994. https://doi.org/10.1088/0034-4885/67/11/R01; Balagurov A.M., Bushmeleva S.N., Pomjakushin V.Yu., Sheptyakov D.V., Amelichev V.A., Gorbenko O.Yu., Kaul A.R., Gan’shina E.A., Perkins N.B. Magnetic structure of NaMnO3 consistently doped with Sr and Ru. Physical Review B. 2004; 70: 014427. https://doi.org/10.1103/PhysRevB.70.014427; Дунаевский С.М. Магнитные фазовые диаграммы манганитов в области их электронного легирования (обзор). Физика твердого тела. 2004; 46(2): 193—211.; Kozlenko D.P., Glazkov V.P., Jirák Z., Savenko B.N. High pressure effects on the crystal and magnetic structure of Pr1-xSrxMnO3 manganites (x = 0.5–0.56). Journal of Physics: Condensed Matter. 2004; 16(13): 2381—2394. https://doi.org/10.1088/0953-8984/16/13/017; Янчевский О.З., Вьюнов О.И., Белоус А.Г., Товстолыткин А.И., Кравчик В.П. Синтез и свойства манганитов La0.7Sr0.3Mn1-xTixO3. Физика твердого тела. 2006; 48(4): 667—673.; McIntosh S., Vente J.F., Haije W.G., Blank D.H.A., Bouwmeester H.J.M. Structure and oxygen stoichiometry of SrCo0.8Fe0.2O3-δ and Ba0.5Sr0.5Co0.8Fe0.2O3-δ. Solid State Ionics. 2006; 177(19–25): 1737—1742. https://doi.org/10.1016/j.ssi.2006.03.041; Nagaev E.L. Lanthanum manganites and other giant-magnetoresistance magnetic conductors. Physics – Uspekhi. 1996; 39(8): 781—806. https://doi.org/10.1070/ PU1996v039n08ABEH000161; Maignan A., Martin C., Pelloquin D., Nguyen N., Raveau B. Structural and magnetic studies of ordered oxygen-deficient perovskites LnBaCo2O5+δ, closely related to the ‘‘112’’ structure. Journal of Solid State Chemistry. 1999; 142(2): 247—260. https://doi.org/10.1006/jssc.1998.7934; Yamazoe N., Furukawa S., Teraoka Y., Seiyama T. The effect of oxygen sorption on the crystal structure of La1-xSrxCoO3-δ. Chemistry Letters. 1982; 11(12): 2019—2022. https://doi.org/10.1246/cl.1982.2019; van den Brink, J., Khaliullin, G., Khomskii, D. Charge and orbital order in half-doped manganites. Physical Review Letters. 1999; 83(24): 5118. https://doi.org/10.1103/PhysRevLett.83.5118; Deshmukh A.V., Pati l S.I., Bhagat S.M., Sagdeo P.R., Choudhary R.J., Phase D.M. Effect of iron doping on electrical, electronic and magnetic properties of La0.7Sr0.3MnO3. Journal of Physics D: Applied Physics. 2009; 42(18): 185410. https://doi.org/10.1088/0022-3727/42/18/185410; Kuo J.H., Anderson H.U., Sparlin D.M. Oxidation-reduction behavior of undoped and Sr-doped LaMnO3: defect structure, electrical conductivity, and thermoelectric power. Journal of Solid State Chemistry. 1990; 87(1): 55—63. https://doi.org/10.1016/0022-4596(90)90064-5; Kruidhof H., Bouwmeester H. J.M., v. Doorn R.H.E., Burggraaf A.J. Influence of order-disorder transitions on oxygen permeability through selected nonstoichiometric perovskite-type oxides. Solid State Ionics. 1993; 63–65: 816—822. https://doi.org/10.1016/0167-2738(93)90202-E; Ritter C., Ibarra M.R., Morellon L., Blasco J., Garcia J., De Teresa J.M. Structural and magnetic properties of double perovskites AA’FeMoO6 (AA’ = Ba2, BaSr, Sr2 and Ca2). Journal of Physics: Condensed Matter. 2000; 12(38): 8295—8308. https://doi.org/10.1088/0953-8984/12/38/306; Goodenough J.B. Metallic oxides. Progress in Solid State Chemistry. 1971: 5: 145—399. https://doi.org/10.1016/0079-6786(71)90018-5; Troyanchuk I.O., Bushinsky M.V., Szymczak H., Bärner K., Maignan A. Magnetic interaction in Mg, Ti, Nb doped manganites. European Physical Journal B. 2002: 28(1): 75—80. https://doi.org/10.1140/epjb/e2002-00202-2; Ульянов А.Н., Мазур А.С., Янг Д.С., Криворучко В.Н., Даниленко И.А., Константинова Т.Е., Левченко Г.Г. Локальные структурные и магнитные неоднородности в наноразмерных La0.7Sr0.3MnO3 манганитах. Наносистемы, Наноматериалы, Нанотехнологии. 2011; 9(1): 107—114. https://www.imp.kiev.ua/nanosys/media/pdf/2011/1/nano_vol9_iss1_p0107p0114_2011.pdf; Каланда Н.А., Ярмолич М.В., Гурский А.Л., Петров А.В., Желудкевич А.Л., Игнатенко О.В., Сердечнова М. Кислородная нестехиометрия и магнитные свойства легированных манганитов La0.7Sr0.3Mn0.95Fe0.05O3-δ. Известия высших учебных заведений. Материалы электронной техники. 2022; 25(1): 52—63. https://doi.org/10.17073/1609-3577-2022-1-52-63; dos Santos-Gómez L., Leon-Reina L., Porras-Vazquez J.M., Losilla E.R., Marrero-Lopez D. Chemical stability and compatibility of double perovskite anode materials for SOFCs. Solid State Ionics. 2013; 239: 1—7. https://doi.org/10.1016/j.ssi.2013.03.005; Rodríguez-Carvajal J. Recent developments of the program FULLPROF. Commission on powder diffraction (IUCr). Newsletter. 2001; 26: 12—19.; Kraus W. POWDER CELL — a program for the representation and manipulation of crystal structures and calculation of the resulting X-ray powder patterns. Journal of Applied Crystallography. 1996; 29(3): 301—303. https://doi.org/10.1107/S0021889895014920; Меrzhanov А.G., Barzykin V.V., Shteinberg A.S., Gontkovskayaт V.T. Methodological Principles in studying chemical reaction kinetics under conditions of programmed heating. Thermochimica Acta. 1977; 21(3): 301—332. https://doi.org/10.1016/0040-6031(77)85001-6; Sánchez-Rodríguez D., Eloussifi H., Farjas J., Roura P., Dammak M. Thermal gradients in thermal analysis experiments: Criterions to prevent inaccuracies when determining sample temperature and kinetic parameters. Thermochimica Acta. 2014; 589: 37—46. https://doi.org/10.1016/j.tca.2014.05.001; Каланда Н.А. Термостимулированная десорбция кислорода в Sr2FeMoO6-δ. Известия высших учебных заведений. Материалы электронной техники. 2019: 21(1): 48—53. https://doi.org/10.17073/1609-3577-2018-1-48-53; Третьяков Ю.Д. Развитие неорганической химии как фундаментальной основы создания новых поколений функциональных материалов. Успехи химии. 2004: 73(9): 899—916.; Штиллер В. Уравнение Аррениуса и неравновесная кинетика. Изд-во Мир. 2000. 176 c.; Mizusaki J., Mori N., Takai H., Yonemura Y., Minamiue H., Tagawa H., Dokiya M., Inaba H., Naraya K., Sasamoto T., Hashimoto T. Oxygen nonstoichiometry and defect equilibrium in the perovskite-type oxides La1-xSrxMnO3+d. Solid State Ionics, 2000; 129(1-4): 163—177. https://doi.org/10.1016/S0167-2738(99)00323-9; https://met.misis.ru/jour/article/view/506

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    Přispěvatelé: N. A. Kalanda M. V. Yarmolich A. L. Gurskii a další

    Zdroj: Izvestiya Vysshikh Uchebnykh Zavedenii. Materialy Elektronnoi Tekhniki = Materials of Electronics Engineering; Том 25, № 1 (2022); 52-63 ; Известия высших учебных заведений. Материалы электронной техники; Том 25, № 1 (2022); 52-63 ; 2413-6387 ; 1609-3577 ; 10.17073/1609-3577-2022-1

    Popis souboru: application/pdf

    Relation: https://met.misis.ru/jour/article/view/471/370; Goodenough J.B. Electronic and ionic transport properties and other physical aspects of perovskites. Reports on Progress in Physics. 2004; 67: 1915—1994. https://doi.org/10.1088/0034-4885/67/11/R01; Дунаевский С.М. Магнитные фазовые диаграммы манганитов в области их электронного легирования (обзор). Физика твердого тела. 2004; 46(2): 193—211.; Balagurov A.M., Bushmeleva S.N., Pomja­ku­shin V.Yu., Sheptyakov D.V., Amelichev V.A., Gorbenko O.Yu., Kaul A.R., Gan’shina E.A., Perkins N.B. Magnetic structure of NaMnO3 consistently doped with Sr and Ru. Phys. Rev. B. 2004; 70: 014427. https://doi.org/10.1103/PhysRevB.70.014427; Kozlenko D.P., Glazkov V.P., Jirák Z., Savenko B.N. High pressure effects on the crystal and magnetic structure of Pr1-xSrxMnO3 manganites (x = 0.5–0.56). J. Phys.: Condensed Matter. 2004; 16(13): 2381—2394. https://doi.org/10.1088/0953-8984/16/13/017; Nagaev E.L. Lanthanum manganites and other giant-magnetoresistance magnetic conductors. Physics – Uspekhi. 1996; 39(8): 781—806. https://doi.org/10.1070/ PU1996v039n08ABEH000161; Янчевский О.З., Вьюнов О.И., Белоус А.Г., Товстолыткин А.И., Кравчик В.П. Синтез и свойства манганитов La0.7Sr0.3Mn1-xTixO3. Физика твердого тела. 2006; 48(4): 667—673.; McIntosh S., Vente J.F., Haije W.G., Blank D.H.A., Bouwmeester H.J.M. Structure and oxygen stoichiometry of SrCo0.8Fe0.2O3-δ and Ba0.5Sr0.5Co0.8Fe0.2O3-δ. Solid State Ionics. 2006; 177(19–25): 1737—1742. https://doi.org/10.1016/j.ssi.2006.03.041; Maignan A., Martin C., Pelloquin D., Nguyen N., Raveau B. Structural and magnetic studies of ordered oxygen-deficient perovskites LnBaCo2O5+δ, closely related to the ‘‘112’’ structure. J. Solid State Chem. 1999; 142(2): 247—260. https://doi.org/10.1006/jssc.1998.7934; Yamazoe N., Furukawa S., Teraoka Y., Seiyama T. The effect of oxygen sorption on the crystal structure of La1-xSrxCoO3-δ. Chem. Lett. 1982; 11(12): 2019—2022. https://doi.org/10.1246/cl.1982.2019; Deshmukh A.V., Patil S.I., Bhagat S.M., Sagdeo P.R., Choudhary R.J., Phase D.M. Effect of iron doping on electrical, electronic and magnetic properties of La0.7Sr0.3MnO3. J. Phys. D: Appl. Phys. 2009; 42(18): 185410. https://doi.org/10.1088/0022-3727/42/18/185410; Barik S.K., Mahendiran R. Ac magnetotransport in La0.7Sr0.3Mn0.95Fe0.05O3 at low dc magnetic fields. Solid State Communications. 2011; 151(24): 1986—1989. https://doi.org/10.1016/j.ssc.2011.09.007; Ritter C., Ibarra M.R., Morellon L., Blasco J., Garcia J., De Teresa J.M. Structural and magnetic properties of double perovskites AA’FeMoO6 (AA’ = Ba2, BaSr, Sr2 and Ca2). J. Phys.: Condensed Matter. 2000; 12(38): 8295—8308. https://doi.org/10.1088/0953-8984/12/38/306; dos Santos–Gómez L., Leon-Reina L., Porras-Vazquez J.M., Losilla E.R., Marrero-Lopez D. Chemical stability and compatibility of double perovskite anode materials for SOFCs. Solid State Ionics. 2013; 239: 1—7. https://doi.org/10.1016/j.ssi.2013.03.005; Huang Q., Li Z.W., Li J., Ong, C.K. The magnetic, electrical transport and magnetoresistance properties of epitaxial La0.7Sr0.3Mn1-xFexO3 (x = 0–0.20) thin films prepared by pulsed laser deposition. J. Phys.: Condensed Matter. 2001; 13(18): 4033—4048. https://doi.org/10.1088/0953-8984/13/18/312; Kruidhof H., Bouwmeester H.J.M., v. Doorn R.H.E., Burggraaf A.J. Influence of order-disorder transitions on oxygen permeability through selected nonstoichiometric perovskite-type oxides. Solid State Ionics. 1993; 63–65: 816—822. https://doi.org/10.1016/0167-2738(93)90202-E; Kuo J.H., Anderson H.U., Sparlin D.M. Oxidation-reduction behavior of undoped and Sr-doped LaMnO3: defect structure, electrical conductivity, and thermoelectric power. J. Solid State Chem. 1990; 87(1): 55—63. https://doi.org/10.1016/0022-4596(90)90064-5; Ульянов А.Н., Мазур А.С., Янг Д.С., Криворучко В.Н., Даниленко И.А., Константинова Т.Е., Левченко Г.Г. Локальные структурные и магнитные неоднородности в наноразмерных La0.7Sr0.3MnO3 манганитах. Наносистемы, Наноматериалы, Нанотехнологии. 2011; 9(1): 107—114. https://www.imp.kiev.ua/nanosys/media/pdf/2011/1/nano_vol9_iss1_p0107p0114_2011.pdf; Криворучко В.Н., Марченко М.А. Моделирование гистерезисных свойств наноструктурированных образцов (LаSr)MnО3. Физика низких температур. 2008; 34(9): 947—955. http://fnt.ilt.kharkov.ua/index.php/fnt/article/view/f34-0947r/6205; Ziese M., Vrejoiu I., Setzer A., Lotnyk A., Hesse D. Coupled magnetic and structural transitions in La0.7Sr0.3MnO3 films on SrTiO3. New J. Phys. 2008; 10: 063024. https://doi.org/10.1088/1367-2630/10/6/063024; Mizusaki J., Mori N., Takai H., Yonemura Y., Minamiue H., Tagawa H., Dokiya M., Inaba H., Naraya K., Sasamoto T., Hashi­moto T. Oxygen nonstoichiometry and defect equilibrium in the perovskite-type oxides La1-xSrxMnO3+d. Solid State Ionics, 2000; 129(1–4): 163—177. https://doi.org/10.1016/S0167-2738(99)00323-9; Jimenes M., Martinez J.L., Herrero E., Alonso J., Prieto C., de Andres A., Vallet-Regi M., Gonzalez-Calbet J., Fernandez-Diaz M.T. Structural and magnetoresistance study of LaxMnyO3±z. Phys. B: Condensed Matter, 1997; 234–236: 708—709. https://doi.org/10.1016/S0921-4526(96)01110-6; Aruna S.T., Muthuraman M., Patil K.C. Combustion synthesis and properties of strontium substituted lanthanum manganites La1-xSrxMnO3 (0≤x≤0.3). J. Mater. Chem., 1997; 7(12): 2499—2503. https://doi.org/10.1039/A703901H; De Leon-Guevara A.M., Berthet P., Berthon J., Millot F., Revcolevschi A., Anane A., Dupas C., Le Dang K., Renard J.P., Veillet P. Influence of controlled oxygen vacancies on the magnetotransport and magnetostructural phenomena in La0.85Sr0.15MnO3-δ single crystals. Phys. Rev. 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    Zdroj: Izvestiya Vysshikh Uchebnykh Zavedenii. Materialy Elektronnoi Tekhniki = Materials of Electronics Engineering; Том 23, № 1 (2020); 71-77 ; Известия высших учебных заведений. Материалы электронной техники; Том 23, № 1 (2020); 71-77 ; 2413-6387 ; 1609-3577 ; 10.17073/1609-3577-2020-1

    Popis souboru: application/pdf

    Relation: https://met.misis.ru/jour/article/view/369/319; Высокотемпературная сверхпроводимость: фундаментальные и прикладные исследования: сборник научных статей // Под ред. А. А. Киселева. Л.: Машиностроение, 1990. 684 c.; Crabtree G. W., Nelson D. R. Vortex physics in high-temperature superconductors // Physics Today. 1997. V. 50, Iss. 4. P. 38—45. DOI:10.1063/1.881715; Sreedhar K., Ganguly P. Evolution and the concomitant disappearance of high-Tc superconductivity with carrier concentration in the YBa2Cu3O7-δ system (0.0 < δ < 0.9): Crossover from a Mott insulator to a band metal // Phys. Rev. B. 1990. V. 41, Iss. 1. P. 371—382. DOI:10.1103/PhysRevB.41.371; Красинькова М. В., Мойжес Б. Я. Влияние упорядочения атомов кислорода на электротранспортные свойства YBa2Cu3O7-х // ФТТ. 1990. Т. 32, Вып. 1. С. 318—321.; Maeda H., Tanaka Y., Fukutomi M., Asano T. A new high-Tc oxide superconductor without a rare earth element // Jpn. J. Appl. Phys. 1988. V. 27, Pt 2, N 2. P. L209—L210. 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    Zdroj: Proceedings of the National Academy of Sciences of Belarus, Chemical Series; № 4 (2016); 7-15 ; Известия Национальной академии наук Беларуси. Серия химических наук; № 4 (2016); 7-15 ; 2524-2342 ; 1561-8331 ; undefined

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