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Microalgae-derived Co3O4 nanomaterials for catalytic CO oxidation.
Sidorowicz, Agnieszka; Yigit, Nevzat; Wicht, Thomas; Stöger-Pollach, Michael; Concas, Alessandro; Orrù, Roberto; Cao, Giacomo; Rupprechter, Günther.
Afiliación
  • Sidorowicz A; Interdepartmental Centre of Environmental Engineering and Sciences, University of Cagliari 09123 Cagliari Italy giacomo.cao@unica.it.
  • Yigit N; Institute of Materials Chemistry, TU Wien Getreidemarkt 9/BC 1060 Vienna Austria guenther.rupprechter@tuwien.ac.at.
  • Wicht T; Institute of Materials Chemistry, TU Wien Getreidemarkt 9/BC 1060 Vienna Austria guenther.rupprechter@tuwien.ac.at.
  • Stöger-Pollach M; University Service Center for Transmission Electron Microscopy, TU Wien Wiedner Hauptstr. 8-10 1040 Vienna Austria.
  • Concas A; Interdepartmental Centre of Environmental Engineering and Sciences, University of Cagliari 09123 Cagliari Italy giacomo.cao@unica.it.
  • Orrù R; Interdepartmental Centre of Environmental Engineering and Sciences, University of Cagliari 09123 Cagliari Italy giacomo.cao@unica.it.
  • Cao G; Interdepartmental Centre of Environmental Engineering and Sciences, University of Cagliari 09123 Cagliari Italy giacomo.cao@unica.it.
  • Rupprechter G; Institute of Materials Chemistry, TU Wien Getreidemarkt 9/BC 1060 Vienna Austria guenther.rupprechter@tuwien.ac.at.
RSC Adv ; 14(7): 4575-4586, 2024 Jan 31.
Article en En | MEDLINE | ID: mdl-38318608
ABSTRACT
Efficient carbon monoxide oxidation is important to reduce its impacts on both human health and the environment. Following a sustainable synthesis route toward new catalysts, nanosized Co3O4 was synthesized based on extracts of microalgae Spirulina platensis, Chlorella vulgaris, and Haematococcus pluvialis. Using the metabolites in the extract and applying different calcination temperatures (450, 650, 800 °C) led to Co3O4 catalysts with distinctly different properties. The obtained Co3O4 nanomaterials exhibited octahedral, nanosheet, and spherical morphologies with structural defects and surface segregation of phosphorous and potassium, originating from the extracts. The presence of P and K in the oxide nanostructures significantly improved their catalytic CO oxidation activity. When normalized by the specific surface area, the microalgae-derived catalysts exceeded a commercial benchmark catalyst. In situ studies revealed differences in oxygen mobility and carbonate formation during the reaction. The obtained insights may facilitate the development of new synthesis strategies for manufacturing highly active Co3O4 nanocatalysts.

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: RSC Adv Año: 2024 Tipo del documento: Article

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: RSC Adv Año: 2024 Tipo del documento: Article