TU Darmstadt / ULB / TUprints

Atomic Layer Deposition-Assisted Synthesis of Embedded Vanadia Catalysts

Ruff, Philip ; Schumacher, Leon ; Rogg, Simone ; Hess, Christian (2024)
Atomic Layer Deposition-Assisted Synthesis of Embedded Vanadia Catalysts.
In: ACS Catalysis, 2019, 9 (7)
doi: 10.26083/tuprints-00028250
Article, Secondary publication, Postprint

[img] Text
117-Atomic Layer Deposition-assisted synthesis of embedded vanadia catalysts-Ruff et al_rev.pdf
Copyright Information: In Copyright.

Download (1MB)
[img] Text
117-SI-Atomic Layer Deposition-assisted synthesis of embedded vanadia ca-Supporting Information for Publication_corrected.pdf
Copyright Information: In Copyright.

Download (203kB)
Item Type: Article
Type of entry: Secondary publication
Title: Atomic Layer Deposition-Assisted Synthesis of Embedded Vanadia Catalysts
Language: English
Date: 29 October 2024
Place of Publication: Darmstadt
Year of primary publication: 3 June 2019
Place of primary publication: Washington, DC
Publisher: American Chemical Society
Journal or Publication Title: ACS Catalysis
Volume of the journal: 9
Issue Number: 7
Collation: 40 Seiten
DOI: 10.26083/tuprints-00028250
Corresponding Links:
Origin: Secondary publication service
Abstract:

Catalyst–support interactions are known to be of great importance for the performance of supported oxide catalysts such as supported vanadia. With the aim of enhancing the oxide–support interactions, we propose a strategy for the controlled synthesis of embedded oxide catalysts using atomic layer deposition (ALD). As demonstrated for vanadia (VOₓ), the synthesis is based on the sequential deposition of VOₓ and the “support” material (Al₂O₃, SiO₂, TiO₂) onto graphene oxide, which serves as a sacrificial carrier matrix facilitating the embedding of VOₓ, followed by template removal by calcination or ozone treatment. Detailed characterization of the synthesis process and the final catalysts is carried out using multiple spectroscopic (Raman, UV–vis, XPS), thermogravimetric, and electron-microscopic (TEM, EELS) analyses. The successful formation of a VOₓ–support interphase is confirmed by UV Raman spectroscopy. Despite the high loadings (Lᵥ > monolayer coverage) of accessible sites, the embedded VOₓ is present in a dispersed state in the case of the ozonolyzed samples. Structural models are proposed to account for the observed behavior. The activity of the embedded VOₓ catalysts is verified in the oxidative dehydrogenation (ODH) of ethanol and compares favorably with reported data on conventional supported catalysts. Compared to the literature, the ozonolyzed VOₓ/Al₂O₃ catalysts show a significantly improved performance, whereas the VOₓ/SiO₂ catalysts define a benchmark. Our results demonstrate the feasibility of rational catalyst engineering of supported oxide catalysts.

Uncontrolled Keywords: atomic layer deposition, vanadia, embedded catalyst, oxidative dehydrogenation, sacrificial template, graphene oxide
Status: Postprint
URN: urn:nbn:de:tuda-tuprints-282508
Classification DDC: 500 Science and mathematics > 540 Chemistry
Divisions: 07 Department of Chemistry > Eduard Zintl-Institut > Physical Chemistry
Date Deposited: 29 Oct 2024 13:37
Last Modified: 07 Nov 2024 07:23
URI: https://tuprints.ulb.tu-darmstadt.de/id/eprint/28250
PPN: 523227981
Export:
Actions (login required)
View Item View Item