[1]
L.L. Freiman Catalysts in Oil Refining, Business Journal NEFTEGAZ.RU. 9 (2017) 40-44.
Google Scholar
[2]
R.M. Mironenko, O.B. Belskaya, V.A. Likholobov, Synthesis of Pd/C Catalysts: Approaches to Regulating the Structure of Active Sites to Achieve High Selectivity in the Hydrogenation of Organic Compounds , Russian Chemical Journal. 62(1-2) (2018) 141-159.
DOI: 10.1134/s1070363220030299
Google Scholar
[3]
E.N. Terekhova, O.N. Baklanova, A.V. Lavrenov, Carbon-Containing Catalysts for the Hydroprocessing of Oil Fractions. Review, Catalysis in Industry. 1 (2017) 18-30.
DOI: 10.1134/s2070050417020106
Google Scholar
[4]
V.M. Mokhov, Yu.V. Popov, D.N. Nebykov, et al., Reductive Nitrobenzene Alkylation with Alcohols Catalyzed by Immobilized Nickel Nanoparticles, Bulletin of the Volgograd State Technical University. 12 (222) (2018) 37-40.
DOI: 10.35211/1990-5297-2021-12-259-56-60
Google Scholar
[5]
G.M. Kurunina, O.M. Ivankina, G.M. Butov, Novel Catalytic Systems Based on Platinum Catalysts, Solid State Phenomena. 299 (2020) 1033-1037.
DOI: 10.4028/www.scientific.net/ssp.299.1033
Google Scholar
[6]
A.I. Dubko, N.V. Yudin, Yu.A. Pinchuk, E.O. Obukhov, Studying the Activity of Palladium Catalysts on Ceramic Carriers with Rare Earth Oxide (REO) Additives. , Advances in Chemistry and Chemical Technology. 31(5) (2017) 186.
Google Scholar
[7]
G.I. Zorina, G.M. Kurunina, G.M. Butov, Studying the Activity of Supported Nickel Catalysts Modified with Mo, Cr, Al Additives in the Aldehyde Hydrogenation Reaction, Oil Refining and Petrochemistry. 1 (2014) 22-24.
Google Scholar
[8]
N.A. Magdalinova, M.V. Klyuev, Hydrogenation and Hydroamination in the Presence of Catalysts Based on Platinum and Carbon Nanofibers, Petroleum Chemistry. 56(12) (2016) 1123-1127.
DOI: 10.1134/s0965544116120100
Google Scholar
[9]
A. Hoang, V.A. Kalashnikova, O.V. Lefedova, Kinetics of the 4-nitro-2'-hydroxy-5'-methyl azobenzene Hydrogenation over Skeletal Nickel in an Aqueous Solution of 2-propanol, News of Higher Educational Institutions. Series: Chemistry and Chemical Technology. 61(3) (2018) 10-15.
DOI: 10.6060/tcct.20186103.5604
Google Scholar
[10]
A.V. Artemov, A.V. Brykin, D.Yu. Arsenyeva, Kinetics of Inorganic Carrier Impregnation with Liquid-Phase Nanodispersions of Metals (Sols) in Obtaining the Supported Metal Catalysts, Catalysis in Industry. 5 (2015) 11-12.
DOI: 10.18412/1816-0387-2015-5-11-12
Google Scholar
[11]
S.A. Solovev , P.I. Kirienko, Designing a Structured Catalyst for Selective Reduction of O2 by Hydrogen in the Presence of NO, Catalysis in Industry. 2(4) (2010) 299-306.
DOI: 10.1134/s2070050410040021
Google Scholar
[12]
Andrzej Cybulski, Jacob A. Moulijn, and Andrzej Stankiewicz (Ed.). Novel Concepts in Catalysis and Chemical Reactors. Wiley-VCH, (2010).
Google Scholar
[13]
L. Stenmark Patent EP 3102559 (A1). (2019).
Google Scholar
[14]
F. Pohl, W. Lorenz, L. Padeken, F. Steffens, G. Wiechers, Patent EP 1935870 (A1).(2012).
Google Scholar
[15]
A. Lange De Oliveira, I. Lottenburger, C. Bechtold, T. Heidemann, Patent EP 3523272 (A1). (2019).
Google Scholar
[16]
F. Pohl, W. Lorenz, L. Padeken, F. Steffens, G. Wiechers, B. Pennemann Patent POL 1935870. (2012).
Google Scholar
[17]
A. Lange De Oliveira, B. Wucher, C. Bechtold, M. Friko, R. Hempel. Patent US 2019233364 (A1). (2019).
Google Scholar
[18]
V.P. Doronin, T.P. Sorokina, P.V. Lipin, et al. Development and Implementation of Zeolite-Containing Cracking Catalysts with a Controlled Content of Rare Earth Elements, Catalysis in Industry. 5 (2014) 9-19.
DOI: 10.1134/s2070050415010043
Google Scholar
[19]
M. Misono (Ed.) Heterogeneous Catalysis of Mixed Oxides: Perovskite and Heteropoly Catalysts. Elsevier, (2013).
Google Scholar
[20]
A.I. Ivanova, Physicochemical and Catalytic Properties of CeO2-Based Systems // Kinetics and Catalysis. 50(6) (2009) 831-849.
Google Scholar
[21]
S. Ifra, E. Roar, J. Hernande, S. Denaire, Patent RU 2 518 969, (2014).
Google Scholar
[22]
A. Lange De Oliveira, B. Wucher, C. Bechtold, M. Friko, R. Hempel, Patent US 2019233364 (A1). (2019).
Google Scholar
[23]
A.S. Lisitsyn, V.N. Parmon, V.K. Duplyakin, V.A. Likholobov, Current Issues and Prospects for the Development of Research in the Field of Supported Palladium Catalysts Rus, Chem. Jour. -. L (4) (2006) 140-153.
Google Scholar
[24]
N.A. Magdalinova, M.V. Klyuev, N.N. Vershinin, O.N. Efimov, Pt- and Pd-Containing Nanodiamonds in Hydrogenation and Hydroamination, Kinetics and Catalysis.. 53(4) (2012) 505.
DOI: 10.1134/s0023158412040052
Google Scholar
[25]
N.K. Eremenko, O.Yu. Podyacheva, Z.R. Ismagilov, I.I. Obraztsova, A.N. Eremenko, L.S. Kibis, D.A. Svintsitskiy, Highly Dispersed Palladium on Carbon Nanofibers for Hydrogenation of Nitrocompounds to Amine, Eurasian Chemico-Technological Journal. 17(2) (2015) 101-103.
DOI: 10.18321/ectj200
Google Scholar
[26]
F. Van Laar, E. Schwab, St. Oehlenschlaeger, H. Voss, W. Mackenroth, Morgenschweis K., Penzel U., Weidner B. EP1678118 (A1), (2006).
Google Scholar
[27]
G.M. Butov, G.I. Zorina, G.M. Kurunina, Hydrogenation of Aromatic Nitro Compounds over the 1 % PT Catalysts Containing Oxides of Rare Earth Elements (REEs) in Coll.: 21st International Congress of Chemical and Process Engineering, CHISA 2014 and 17th Conference on Process Integration, Modelling and Optimisation for Energy Saving and Pollution Reduction, PRES 2014 21. (2014) 236-239.
DOI: 10.4028/www.scientific.net/ssp.316.684
Google Scholar
[28]
G.M. Butov, G.I. Zorina, V.F. Kablov, et al. Hydrogenation of Nitrobenzene over Palladium Catalysts on Rare Earth Oxide Carriers, Petrochemistry and Oil Refining, 5 (2003) (29-32).
Google Scholar
[29]
G.M. Butov, G.I. Zorina, G.M. Kurunina Liquid-Phase Hydrogenation of Benzaldehyde over 1 % Platinum Catalysts on Rare Earth Oxide Carriers, Chem. Ind. Today. 2 (2009) 3-6.
Google Scholar