1
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Bonura G.
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Khassin A.A.
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Yurieva T.M.
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Cannilla C.
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Structure Control on Kinetics of Copper Reduction in Zr–Containing Mixed Oxides During Catalytic Hydrogenation of Carbon Oxides to Methanol
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2
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Minyukova T.P.
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Khasin A.V.
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Yurieva T.M.
Formation of Effective Copper-Based Catalysts of Methanol Synthesis
Kinetics and Catalysis. 2020.
V.61. N6. P.886-893. DOI: 10.1134/S0023158420060087
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3
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Plyasova L.M.
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Simentsova I.I.
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Shtertser N.V.
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Minyukova T.P.
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Structural and Morphological Characteristics of CuMe2O4 Spinels in Reductive Atmosphere Depending on the Chemical Nature of Mе(III) Cations
Materials Research Bulletin. 2018.
V.99. P.314-323. DOI: 10.1016/j.materresbull.2017.11.034
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4
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Minyukova T.P.
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Controlling the Catalytic Properties of Copper-Containing Oxide Catalysts
Kinetics and Catalysis. 2018.
V.59. N1. P.112-122. DOI: 10.1134/s0023158418010081
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5
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Plyasova L.M.
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Bobrikov I.A.
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Zaikovskii V.I.
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Cation Distribution in CuFe2-xCrxO4 Spinels Studied by Neutron Diffraction and Its Effect on Catalytic Properties in Water Gas Shift Reaction
Materials Chemistry and Physics. 2018.
V.211. P.278-282. DOI: 10.1016/j.matchemphys.2018.02.048
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6
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Simentsova I.I.
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Shtertser N.V.
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Minyukova T.P.
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Zaikovskii V.I.
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Study of the Factors Affecting the Formation of Copper–Chromium/Aluminum Oxide Compounds with a Spinel Structure
Russian Journal of Inorganic Chemistry. 2017.
V.62. N1. P.39-46. DOI: 10.1134/S003602361701020X
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7
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Shtertser N.V.
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Plyasova L.M.
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Thermal Decomposition of Hydroxycarbonate Cu-Fe-Cr Spinel Precursors
Catalysis for Sustainable Energy. 2017.
V.4. P.67-72. DOI: 10.1515/cse-2017-0011
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8
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Kopyshev M.V.
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Minyukova T.P.
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Esterification of Pentaerythritol by Carboxylic Acids
Reaction Kinetics, Mechanisms and Catalysis. 2016.
V.117. N2. P.417-427. DOI: 10.1007/s11144-015-0964-7
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9
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Minyukova T.P.
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Catalytic Properties of Copper Chromite Ferrites in Water Gas Shift Reaction and Hydrogen Oxidation
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V.57. N2. P.224-228. DOI: 10.1134/S0023158416020051
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10
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Simentsova I.I.
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Activation of Nickel–Chromium Hydrogenation Catalysts with Hydrogen
Kinetics and Catalysis. 2016.
V.57. N2. P.251-254. DOI: 10.1134/S0023158416020130
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11
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Plyasova L.M.
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Cation Distribution in Cu(Cr2 – xAlx)O4 and Cu(Fe2 – xAlx)O4 According to Neutron-Diffraction Studies and Their Catalytic Properties in the Water-Gas Shift Reaction
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V.10. N6. P.1172-1179. DOI: 10.1134/S102745101605058X
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12
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Minyukova T.P.
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Khasin A.V.
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Khassin A.A.
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Dehydrogenation of Methanol over Cu-Containing Catalysts
Catalysis in Industry. 2016.
V.8. N4. P.293-299. DOI: 10.1134/S2070050416040073
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13
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Plyasova L.M.
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Minyukova T.P.
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Structural Features of Copper Ferrite-Chromites
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V.56. N4. P.642-649. DOI: 10.1134/S0022476615040058
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14
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Khassin A.A.
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Role of Anionic Impurities in the Formation of the Active State of Catalysts Based on Transition Metals
Kinetics and Catalysis. 2014.
V.55. N4. P.502-508. DOI: 10.1134/S0023158414040089
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15
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Khassin A.A.
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Minyukova T.P.
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Genesis of Catalysts for Methanol Synthesis
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V.24. N2. P.67-74. DOI: 10.1016/j.mencom.2014.03.001
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16
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Khassin A.A.
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Cheminform Abstract. Genesis of Catalysts for Methanol Synthesis
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V.45. N23. P.264. DOI: 10.1002/chin.201423264
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17
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Khassin A.A.
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Khasin A.V.
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Interaction of Hydrogen with Cu–Zn Mixed Oxide Model Methanol Synthesis Catalyst
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18
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Minyukova T.P.
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Permeable Composite Membrane as a Catalytically Active Contactor for Hydrogenation Reactions
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19
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Simentsova I.I.
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20
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Minyukova T.P.
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21
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Grandjean D.
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22
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Simentsova I.I.
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Anionic Composition of Precursors of the Co/Al2O3 Catalysts for the Fischer-Tropsch Synthesis
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Simentsova I.I.
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Synthesis of an Efficient Catalyst Based on Nickel and Chromium Oxides for Hydrogenation Reactions
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Simentsova I.I.
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The Effect of the Precursor Structure on the Catalytic Properties of the Nickel-Chromium Catalysts of Hydrogenation Reactions
Russian Chemical Bulletin. 2010.
V.59. N11. P.2055-2060. DOI: 10.1007/s11172-010-0354-2
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25
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Baronskaya N.A.
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Enhancement of Water - Gas Shift Reaction Efficiency: Catalysts and the Catalyst Bed Arrangement
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Khassin A.A.
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Khassin A.A.
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Theoretical Foundations of Chemical Engineering. 2009.
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