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High activity redox catalysts synthesized by chemical vapor impregnation


Citation

Forde, Michael M. and Kesavan, Lokesh and Saiman, Mohd Izham and He, Qian and Dimitratos, Nikolaos and Lopez-Sanchez, Jose Antonio and Jenkins, Robert L. and Taylor, Stuart H. and Kiely, Christopher J. and Hutchings, Graham J. (2014) High activity redox catalysts synthesized by chemical vapor impregnation. ACS Nano, 8 (1). pp. 957-969. ISSN 1936-0851; ESSN: 1936-086X

Abstract

The use of precious metals in heterogeneous catalysis relies on the preparation of small nanoparticles that are stable under reaction conditions. To date, most conventional routes used to prepare noble metal nanoparticles have drawbacks related to surface contamination, particle agglomeration, and reproducibility restraints. We have prepared titania-supported palladium (Pd) and platinum (Pt) catalysts using a simplified vapor deposition technique termed chemical vapor impregnation (CVI) that can be performed in any standard chemical laboratory. These materials, composed of nanoparticles typically below 3 nm in size, show remarkable activity under mild conditions for oxidation and hydrogenation reactions of industrial importance. We demonstrate the preparation of bimetallic Pd–Pt homogeneous alloy nanoparticles by this new CVI method, which show synergistic effects in toluene oxidation. The versatility of our CVI methodology to be able to tailor the composition and morphology of supported nanoparticles in an easily accessible and scalable manner is further demonstrated by the synthesis of Pdshell–Aucore nanoparticles using CVI deposition of Pd onto preformed Au nanoparticles supported on titania (prepared by sol immobilization) in addition to the presence of monometallic Au and Pd nanoparticles.


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Official URL or Download Paper: http://pubs.acs.org/doi/abs/10.1021/nn405757q

Additional Metadata

Item Type: Article
Divisions: Faculty of Science
DOI Number: https://doi.org/10.1021/nn405757q
Publisher: American Chemical Society
Keywords: Bimetallic nanoparticle; Catalysis; Core-shell structures; Gold; Hydrogenation; Nanoalloy; Oxidation; Palladium; Platinum
Depositing User: Nabilah Mustapa
Date Deposited: 15 Apr 2020 16:50
Last Modified: 15 Apr 2020 16:50
Altmetrics: http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1021/nn405757q
URI: http://psasir.upm.edu.my/id/eprint/37856
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