Cargando…

Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis

Following nanoarchitectural approach, mesoporous halloysite nanotubes with internal surface composed of alumina were loaded with 5–6 nm RuCo nanoparticles by sequential loading/reduction procedure. Ruthenium nanoclusters were loaded inside clay tube by microwave-assisted method followed by cobalt io...

Descripción completa

Detalles Bibliográficos
Autores principales: Mazurova, Kristina, Glotov, Aleksandr, Kotelev, Mikhail, Eliseev, Oleg, Gushchin, Pavel, Rubtsova, Maria, Vutolkina, Anna, Kazantsev, Ruslan, Vinokurov, Vladimir, Stavitskaya, Anna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774063/
https://www.ncbi.nlm.nih.gov/pubmed/35069010
http://dx.doi.org/10.1080/14686996.2021.2017754
_version_ 1784636247367483392
author Mazurova, Kristina
Glotov, Aleksandr
Kotelev, Mikhail
Eliseev, Oleg
Gushchin, Pavel
Rubtsova, Maria
Vutolkina, Anna
Kazantsev, Ruslan
Vinokurov, Vladimir
Stavitskaya, Anna
author_facet Mazurova, Kristina
Glotov, Aleksandr
Kotelev, Mikhail
Eliseev, Oleg
Gushchin, Pavel
Rubtsova, Maria
Vutolkina, Anna
Kazantsev, Ruslan
Vinokurov, Vladimir
Stavitskaya, Anna
author_sort Mazurova, Kristina
collection PubMed
description Following nanoarchitectural approach, mesoporous halloysite nanotubes with internal surface composed of alumina were loaded with 5–6 nm RuCo nanoparticles by sequential loading/reduction procedure. Ruthenium nanoclusters were loaded inside clay tube by microwave-assisted method followed by cobalt ions electrostatic attraction to ruthenium during wetness impregnation step. Developed nanoreactors with bimetallic RuCo nanoparticles were investigated as catalysts for the Fischer-Tropsch process. The catalyst with 14.3 wt.% of Co and 0.15 wt.% of Ru showed high activity (СO conversion reached 24.6%), low selectivity to methane (11.9%), CO(2) (0.3%), selectivity to C(5+) hydrocarbons of 79.1% and chain growth index (α) = 0.853. Proposed nanoreactors showed better selectivity to target products combined with high activity in comparison to the similar bimetallic systems supported on synthetic porous materials. It was shown that reducing agent (NaBH(4) or H(2)) used to obtain Ru nanoclusters at first synthesis step played a very important role in the reducibility and selectivity of resulting RuCo catalysts.
format Online
Article
Text
id pubmed-8774063
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Taylor & Francis
record_format MEDLINE/PubMed
spelling pubmed-87740632022-01-21 Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis Mazurova, Kristina Glotov, Aleksandr Kotelev, Mikhail Eliseev, Oleg Gushchin, Pavel Rubtsova, Maria Vutolkina, Anna Kazantsev, Ruslan Vinokurov, Vladimir Stavitskaya, Anna Sci Technol Adv Mater New topics/Others Following nanoarchitectural approach, mesoporous halloysite nanotubes with internal surface composed of alumina were loaded with 5–6 nm RuCo nanoparticles by sequential loading/reduction procedure. Ruthenium nanoclusters were loaded inside clay tube by microwave-assisted method followed by cobalt ions electrostatic attraction to ruthenium during wetness impregnation step. Developed nanoreactors with bimetallic RuCo nanoparticles were investigated as catalysts for the Fischer-Tropsch process. The catalyst with 14.3 wt.% of Co and 0.15 wt.% of Ru showed high activity (СO conversion reached 24.6%), low selectivity to methane (11.9%), CO(2) (0.3%), selectivity to C(5+) hydrocarbons of 79.1% and chain growth index (α) = 0.853. Proposed nanoreactors showed better selectivity to target products combined with high activity in comparison to the similar bimetallic systems supported on synthetic porous materials. It was shown that reducing agent (NaBH(4) or H(2)) used to obtain Ru nanoclusters at first synthesis step played a very important role in the reducibility and selectivity of resulting RuCo catalysts. Taylor & Francis 2022-01-18 /pmc/articles/PMC8774063/ /pubmed/35069010 http://dx.doi.org/10.1080/14686996.2021.2017754 Text en © 2022 The Author(s). Published by National Institute for Materials Science in partnership with Taylor & Francis Group. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle New topics/Others
Mazurova, Kristina
Glotov, Aleksandr
Kotelev, Mikhail
Eliseev, Oleg
Gushchin, Pavel
Rubtsova, Maria
Vutolkina, Anna
Kazantsev, Ruslan
Vinokurov, Vladimir
Stavitskaya, Anna
Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis
title Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis
title_full Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis
title_fullStr Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis
title_full_unstemmed Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis
title_short Natural aluminosilicate nanotubes loaded with RuCo as nanoreactors for Fischer-Tropsch synthesis
title_sort natural aluminosilicate nanotubes loaded with ruco as nanoreactors for fischer-tropsch synthesis
topic New topics/Others
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774063/
https://www.ncbi.nlm.nih.gov/pubmed/35069010
http://dx.doi.org/10.1080/14686996.2021.2017754
work_keys_str_mv AT mazurovakristina naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT glotovaleksandr naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT kotelevmikhail naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT eliseevoleg naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT gushchinpavel naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT rubtsovamaria naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT vutolkinaanna naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT kazantsevruslan naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT vinokurovvladimir naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis
AT stavitskayaanna naturalaluminosilicatenanotubesloadedwithrucoasnanoreactorsforfischertropschsynthesis