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Gasification of hydrolysis lignin with CO2 in the presence of Fe and Co compounds

Artem Anatol'evich Medvedev 1
Artem Anatol'evich Medvedev
Aleksandr Leonidovich Kustov 1, 2
Aleksandr Leonidovich Kustov
Darya Alekseevna Beldova 1
Darya Alekseevna Beldova
Konstantin Borisovich Kalmykov 1
Konstantin Borisovich Kalmykov
Bipul Sarkar 3
Bipul Sarkar
Egor Maksimovich Kostyukhin 2
Egor Maksimovich Kostyukhin
Leonid Modestovich Kustov
Published 2022-04-29
CommunicationVolume 32, Issue 3, 402-404
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Medvedev A. A. et al. Gasification of hydrolysis lignin with CO2 in the presence of Fe and Co compounds // Mendeleev Communications. 2022. Vol. 32. No. 3. pp. 402-404.
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Medvedev A. A., Kustov A. L., Beldova D. A., Kravtsov A. V., Kalmykov K. B., Sarkar B., Kostyukhin E. M., Kustov L. M. Gasification of hydrolysis lignin with CO2 in the presence of Fe and Co compounds // Mendeleev Communications. 2022. Vol. 32. No. 3. pp. 402-404.
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TY - JOUR
DO - 10.1016/j.mencom.2022.05.038
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.05.038
TI - Gasification of hydrolysis lignin with CO2 in the presence of Fe and Co compounds
T2 - Mendeleev Communications
AU - Medvedev, Artem Anatol'evich
AU - Kustov, Aleksandr Leonidovich
AU - Beldova, Darya Alekseevna
AU - Kravtsov, Alexei Valeryevich
AU - Kalmykov, Konstantin Borisovich
AU - Sarkar, Bipul
AU - Kostyukhin, Egor Maksimovich
AU - Kustov, Leonid Modestovich
PY - 2022
DA - 2022/04/29
PB - Mendeleev Communications
SP - 402-404
IS - 3
VL - 32
ER -
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@article{2022_Medvedev,
author = {Artem Anatol'evich Medvedev and Aleksandr Leonidovich Kustov and Darya Alekseevna Beldova and Alexei Valeryevich Kravtsov and Konstantin Borisovich Kalmykov and Bipul Sarkar and Egor Maksimovich Kostyukhin and Leonid Modestovich Kustov},
title = {Gasification of hydrolysis lignin with CO2 in the presence of Fe and Co compounds},
journal = {Mendeleev Communications},
year = {2022},
volume = {32},
publisher = {Mendeleev Communications},
month = {Apr},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.05.038},
number = {3},
pages = {402--404},
doi = {10.1016/j.mencom.2022.05.038}
}
MLA
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Medvedev, Artem Anatol'evich, et al. “Gasification of hydrolysis lignin with CO2 in the presence of Fe and Co compounds.” Mendeleev Communications, vol. 32, no. 3, Apr. 2022, pp. 402-404. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2022.05.038.

Keywords

carbon dioxide
Carbon materials
carbon monoxide
CO2 conversion
gasification
lignin

Abstract

The effect of the nature of the metal (Fe and Co) deposited on the surface of hydrolysis lignin, as well as the metal content (1, 3, 5 and 7 wt%), on the process of dry catalytic lignin reforming has been studied. The use of the catalyst led to a twofold increase in the conversion of carbon dioxide at temperatures of 500–800 °C, while both metals showed similar activity. The maximum specific catalytic effect is achieved when supporting 7 wt% of active metals.

References

1.
Catalytic conversion of lignocellulosic biomass to fine chemicals and fuels.
Zhou C., Xia X., Lin C., Tong D., Beltramini J.
Chemical Society Reviews, 2011
2.
Catalytic conversion of biomass to biofuels
Alonso D.M., Bond J.Q., Dumesic J.A.
Green Chemistry, 2010
4.
Fast pyrolysis of cassava rhizome in the presence of catalysts
Pattiya A., Titiloye J.O., Bridgwater A.V.
Journal of Analytical and Applied Pyrolysis, 2008
5.
Fractionation of Eucalyptus grandis chips by dilute acid-catalysed steam explosion
Emmel A., Mathias A.L., Wypych F., Ramos L.P.
Bioresource Technology, 2003
7.
Hydrothermal liquefaction of wood: a critical review
Jindal M.K., Jha M.K.
Reviews in Chemical Engineering, 2016
8.
Hydrolysis kinetics of biopolymers in subcritical water
Rogalinski T., Liu K., Albrecht T., Brunner G.
Journal of Supercritical Fluids, 2008
9.
Production of hydrogen by supercritical water reforming of O-containing organic components of plant raw materials
Bogdan V.I., Koklin A.E., Kalenchuk A.N., Maschenko N.V., Bogdan T.V., Kustov L.M.
Biomass and Bioenergy, 2020
10.
From waste biomass to chemicals and energy via microwave-assisted processes
Calcio Gaudino E., Cravotto G., Manzoli M., Tabasso S.
Green Chemistry, 2019
11.
Microwave-assisted conversion of lignin into aromatic compounds
Kustov L.M., Tarasov A.L., Beletskaya I.P.
Russian Journal of Organic Chemistry, 2015
12.
The role of nanosized nickel particles in microwave-assisted dry reforming of lignin
Tsodikov M.V., Ellert O.G., Nikolaev S.A., Arapova O.V., Konstantinov G.I., Bukhtenko O.V., Vasil’kov A.Y.
Chemical Engineering Journal, 2017
13.
Microwave-Assisted Lignin Conversion to Liquid Products in the Presence of Iron and Nickel
Arapova O.V., Chistyakov A.V., Palankoev T.A., Bondarenko G.N., Tsodikov M.V.
Petroleum Chemistry, 2020
14.
Fe-containing nanoparticles used as effective catalysts of lignin reforming to syngas and hydrogen assisted by microwave irradiation
Tsodikov M.V., Ellert O.G., Nikolaev S.A., Arapova O.V., Bukhtenko O.V., Maksimov Y.V., Kirdyankin D.I., Vasil’kov A.Y.
Journal of Nanoparticle Research, 2018
16.
Carbon Dioxide Reduction with Hydrogen on Carbon‐Nanotube‐Supported Catalysts under Supercritical Conditions
Bogdan V.I., Pokusaeva Y.A., Koklin A.E., Savilov S.V., Chernyak S.A., Lunin V.V., Kustov L.M.
Energy Technology, 2019
17.
Carbon Dioxide Hydrogenation under Subcritical and Supercritical Conditions in the Presence of 15% Fe/SiO2 Catalyst
Evdokimenko N.D., Kim K.O., Kapustin G.I., Davshan N.A., Kustov A.L.
Catalysis in Industry, 2018
18.
19.
Application of catalysts to coal gasification with carbon dioxide
Kurbatova N.A., El’man A.R., Bukharkina T.V.
Kinetics and Catalysis, 2011
20.
Dehydrogenation of Propane in the Presence of CO2 on Supported Monometallic MOy/SiO2 and CrOxMOy/SiO2 (M = Fe, Co, and Ni) Bimetallic Catalysts
Tedeeva M.A., Kustov A.L., Pribytkov P.V., Strekalova A.A., Kalmykov K.B., Dunaev S.F., Kustov L.M.
Russian Journal of Physical Chemistry A, 2021
21.
10.1016/j.mencom.2022.05.038_b0105
Kaneko
Ullmann’s Encyclopedia of Industrial Chemistry, 2001
22.
Catalytic effect of alkali carbonates on CO2 gasification of Pingshuo coal
Meng L., Wang M., Yang H., Ying H., Chang L.
Mining Science and Technology (China), 2011
24.
Kustov L.M., Tarasov A.L., Kustov A.L.
Mendeleev Communications, 2020
25.
Kustov L.M., Tarasov A.L., Nissenbaum V.D., Kustov A.L.
Mendeleev Communications, 2021
26.
Earth-abundant 3d-transition-metal catalysts for lignocellulosic biomass conversion
Feng Y., Long S., Tang X., Sun Y., Luque R., Zeng X., Lin L.
Chemical Society Reviews, 2021