Standard

Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition. / Suknev, A. P.; Dorovskikh, S. I.; Borisova, D. A. et al.

In: Catalysis in Industry, Vol. 18, No. 3, 17.08.2026, p. 292-302.

Research output: Contribution to journal › Article › peer-review

Harvard

APA

Vancouver

Suknev AP, Dorovskikh SI, Borisova DA, Sadovskaya EM, Zhezhera M, Maximovskii EA et al. Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition. Catalysis in Industry. 2026 Aug 17;18(3):292-302. doi: 10.1134/S2070050426700212

Author

Suknev, A. P. ; Dorovskikh, S. I. ; Borisova, D. A. et al. / Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition. In: Catalysis in Industry. 2026 ; Vol. 18, No. 3. pp. 292-302.

BibTeX

@article{528468de8e8e4a3389f94a22179f8127,
title = "Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition",
abstract = "Abstract: Using chemical vapor deposition (CVD) and the traditional method of incipient wetness impregnation, new Pd–glass fiber catalysts (GFCs) for the oxidation of volatile organic compounds (VOCs) were synthesized. GFC samples were characterized by physicochemical methods (SEM, XPS), and the formation of metal particles on the surface of glass fibers was studied. The process of methane oxidation over the synthesized GFCs was studied, and the specific rates and activation energies of the methane oxidation reaction were determined. The comparative analysis of catalysts prepared by CVD and impregnation was carried out, and the potential of CVD as an efficient GFC synthesis method was demonstrated.",
keywords = "SEM, XPS, activation energy, chemical vapor deposition, glass fiber catalyst, methane, palladium, reaction rate, volatile organic compounds, летучие органические соединения, химическое осаждение из паровой фазы, палладий, метан, атализатор из стекловолокна, СЭМ, РФЭС, скорость реакции, энергия активации",
author = "Suknev, {A. P.} and Dorovskikh, {S. I.} and Borisova, {D. A.} and Sadovskaya, {E. M.} and M. Zhezhera and Maximovskii, {E. A.} and Svintsitskii, {D. A.} and Derevshchikov, {V. S.} and Vikulova, {E. S.}",
note = "Suknev, A.P., Dorovskikh, S.I., Borisova, D.A. et al. Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition. Catal. Ind. 18, 292–302 (2026). https://doi.org/10.1134/S2070050426700212 This study was supported by the Russian Federation Ministry of Science and Higher Education of the Russian Federation within the framework of a state assignment to the Boreskov Institute of Catalysis SB RAS (project no. FWUR-2024-0038), and Pd deposition on glass fibers was carried out within the framework of a state assignment to the Nikolaev Institute of Inorganic Chemistry SB RAS (project no. 121031700314-5).",
year = "2026",
month = aug,
day = "17",
doi = "10.1134/S2070050426700212",
language = "English",
volume = "18",
pages = "292--302",
journal = "Catalysis in Industry",
issn = "2070-0504",
publisher = "Maik Nauka-Interperiodica Publishing",
number = "3",

}

RIS

TY - JOUR

T1 - Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition

AU - Suknev, A. P.

AU - Dorovskikh, S. I.

AU - Borisova, D. A.

AU - Sadovskaya, E. M.

AU - Zhezhera, M.

AU - Maximovskii, E. A.

AU - Svintsitskii, D. A.

AU - Derevshchikov, V. S.

AU - Vikulova, E. S.

N1 - Suknev, A.P., Dorovskikh, S.I., Borisova, D.A. et al. Deep Methane Oxidation over Pd–Glass Fiber Catalysts Prepared by Chemical Vapor Deposition. Catal. Ind. 18, 292–302 (2026). https://doi.org/10.1134/S2070050426700212 This study was supported by the Russian Federation Ministry of Science and Higher Education of the Russian Federation within the framework of a state assignment to the Boreskov Institute of Catalysis SB RAS (project no. FWUR-2024-0038), and Pd deposition on glass fibers was carried out within the framework of a state assignment to the Nikolaev Institute of Inorganic Chemistry SB RAS (project no. 121031700314-5).

PY - 2026/8/17

Y1 - 2026/8/17

N2 - Abstract: Using chemical vapor deposition (CVD) and the traditional method of incipient wetness impregnation, new Pd–glass fiber catalysts (GFCs) for the oxidation of volatile organic compounds (VOCs) were synthesized. GFC samples were characterized by physicochemical methods (SEM, XPS), and the formation of metal particles on the surface of glass fibers was studied. The process of methane oxidation over the synthesized GFCs was studied, and the specific rates and activation energies of the methane oxidation reaction were determined. The comparative analysis of catalysts prepared by CVD and impregnation was carried out, and the potential of CVD as an efficient GFC synthesis method was demonstrated.

AB - Abstract: Using chemical vapor deposition (CVD) and the traditional method of incipient wetness impregnation, new Pd–glass fiber catalysts (GFCs) for the oxidation of volatile organic compounds (VOCs) were synthesized. GFC samples were characterized by physicochemical methods (SEM, XPS), and the formation of metal particles on the surface of glass fibers was studied. The process of methane oxidation over the synthesized GFCs was studied, and the specific rates and activation energies of the methane oxidation reaction were determined. The comparative analysis of catalysts prepared by CVD and impregnation was carried out, and the potential of CVD as an efficient GFC synthesis method was demonstrated.

KW - SEM

KW - XPS

KW - activation energy

KW - chemical vapor deposition

KW - glass fiber catalyst

KW - methane

KW - palladium

KW - reaction rate

KW - volatile organic compounds

KW - летучие органические соединения

KW - химическое осаждение из паровой фазы

KW - палладий, метан

KW - атализатор из стекловолокна

KW - СЭМ

KW - РФЭС

KW - скорость реакции

KW - энергия активации

UR - https://www.mendeley.com/catalogue/9998f1bc-0931-3087-85b9-c8a76be90fa1/

UR - https://www.scopus.com/pages/publications/105047685492

U2 - 10.1134/S2070050426700212

DO - 10.1134/S2070050426700212

M3 - Article

VL - 18

SP - 292

EP - 302

JO - Catalysis in Industry

JF - Catalysis in Industry

SN - 2070-0504

IS - 3

ER -

ID: 83293713