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Nickel–praseodymium catalysts supported on LaFeO3/SiO2 for ethanol steam reforming reaction

Maksim Yu. Lopatin 1
Maksim Yu. Lopatin
Anna Alexandrovna Fedorova 1
Anna Alexandrovna Fedorova
Igor Viktorovich Morozov 1
Igor Viktorovich Morozov
Yulia E. Fedorova 2
Yulia E. Fedorova
Iana S. Soboleva 1, 3
Iana S. Soboleva
A V Sobolev 1, 3
A V Sobolev
Alexander Valer'evich Knotko 1, 4
Alexander Valer'evich Knotko
Dmitry Igorevich Petukhov 1, 4
Dmitry Igorevich Petukhov
Vladimir Alekseevich Rogov 2, 5
Vladimir Alekseevich Rogov
Ekaterina Andreena Smal 2
Ekaterina Andreena Smal
Nikita F. Eremeev 2
Nikita F. Eremeev
Ekaterina M. Sadovskaya 2
Ekaterina M. Sadovskaya
Vladislav Aleksandrovich Sadykov 2, 5
Vladislav Aleksandrovich Sadykov
2 Federal Research Center G. K. Boreskov Institute of Catalysis, Siberian Branch of the Russian Academy of Sciences, 630090 Novosibirsk, Russian Federation
3 Department of Chemistry, M. V. Lomonosov Moscow State University -- Beijing Institute of Technology (MSU-BIT University), 517182 Shenzhen, China
Published 2026-02-03
CommunicationVolume 36, Issue 2, 217-219
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Lopatin M. Y. et al. Nickel–praseodymium catalysts supported on LaFeO3/SiO2 for ethanol steam reforming reaction // Mendeleev Communications. 2026. Vol. 36. No. 2. pp. 217-219.
GOST all authors (up to 50) Copy
Lopatin M. Y., Fedorova A. A., Morozov I. V., Fedorova Y. E., Soboleva I. S., Sobolev A. V., Maslakov K. I., Knotko A. V., Petukhov D. I., Rogov V. A., Smal E. A., Eremeev N. F., Sadovskaya E. M., Sadykov V. A. Nickel–praseodymium catalysts supported on LaFeO3/SiO2 for ethanol steam reforming reaction // Mendeleev Communications. 2026. Vol. 36. No. 2. pp. 217-219.
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TY - JOUR
DO - 10.71267/mencom.7894
UR - https://mendcomm.colab.ws/publications/10.71267/mencom.7894
TI - Nickel–praseodymium catalysts supported on LaFeO3/SiO2 for ethanol steam reforming reaction
T2 - Mendeleev Communications
AU - Lopatin, Maksim Yu.
AU - Fedorova, Anna Alexandrovna
AU - Morozov, Igor Viktorovich
AU - Fedorova, Yulia E.
AU - Soboleva, Iana S.
AU - Sobolev, A V
AU - Maslakov, Konstantin Igorevich
AU - Knotko, Alexander Valer'evich
AU - Petukhov, Dmitry Igorevich
AU - Rogov, Vladimir Alekseevich
AU - Smal, Ekaterina Andreena
AU - Eremeev, Nikita F.
AU - Sadovskaya, Ekaterina M.
AU - Sadykov, Vladislav Aleksandrovich
PY - 2026
DA - 2026/02/03
PB - Mendeleev Communications
SP - 217-219
IS - 2
VL - 36
ER -
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@article{2026_Lopatin,
author = {Maksim Yu. Lopatin and Anna Alexandrovna Fedorova and Igor Viktorovich Morozov and Yulia E. Fedorova and Iana S. Soboleva and A V Sobolev and Konstantin Igorevich Maslakov and Alexander Valer'evich Knotko and Dmitry Igorevich Petukhov and Vladimir Alekseevich Rogov and Ekaterina Andreena Smal and Nikita F. Eremeev and Ekaterina M. Sadovskaya and Vladislav Aleksandrovich Sadykov},
title = {Nickel–praseodymium catalysts supported on LaFeO3/SiO2 for ethanol steam reforming reaction},
journal = {Mendeleev Communications},
year = {2026},
volume = {36},
publisher = {Mendeleev Communications},
month = {Feb},
url = {https://mendcomm.colab.ws/publications/10.71267/mencom.7894},
number = {2},
pages = {217--219},
doi = {10.71267/mencom.7894}
}
MLA
Cite this
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Lopatin, Maksim Yu., et al. “Nickel–praseodymium catalysts supported on LaFeO3/SiO2 for ethanol steam reforming reaction.” Mendeleev Communications, vol. 36, no. 2, Feb. 2026, pp. 217-219. https://mendcomm.colab.ws/publications/10.71267/mencom.7894.

Keywords

apatite-type lanthanum silicate
cyclodextrins
ethanol steam reforming
perovskites
sol--gel method
supported catalyst

Abstract

A modified sol–gel method was used as a novel approach to the synthesis of nickel–praseodymium catalysts supported on LaFeO3/SiO2. The catalysts were investigated using XRD, EDX, low-temperature nitrogen physisorption, Mössbauer spectroscopy, TPR and XPS; oxygen mobility in the samples was studied using the oxygen isotope exchange method; then the catalysts were tested in the ethanol steam reforming reaction. The effect of synthesis conditions on catalyst properties was analyzed, and it was found that higher oxygen mobility provides higher resistance to coke formation.

Funders

Ministry of Education and Science of the Russian Federation
AAAA-A21-121011590082-2

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