Hydrazine Electrooxidation with PdNPs and Its Application for a Hybrid Self-Powered Sensor and N2H4 Decontamination.
The use is reported of cubic palladium nanoparticles (PdNPs) for the catalytic oxidn. of hydrazine for use in a hybrid self-powered N2H4 sensor. Multiwalled carbon nanotube electrodes were prepd. and functionalized with PdNPs by drop casting, confining the colloidal suspension of nanoparticles into the 3D-carbon nanotube matrix support. Electron microscopy and electrochem. characterization expts. were performed and confirmed the presence, uniform distribution, and accessibility of the metallic particles. Cubic PdNPs with an av. diam. of 22.5 nm were investigated for their catalytic hydrazine oxidn. capacities at varying hydrazine concns. Application of the PdNPs for electrochem. detection of hydrazine was demonstrated using a hybrid fuel cell setup with the PdNPs-based electrode as the anode and a bilirubin oxidase bioelectrode as the oxygen-reducing cathode. The self-powered hybrid sensor exhibits linear hydrazine detection from 0.02-4.00 mmol L-1 and a sensitivity of 53 ± 3 mW cm-2 mmol-1 L. When using the air-breathing cathode setup, the fuel cell could deliver a maximal current and power output of 1.23 ± 0.08 mA cm-2 and 267 ± 10 $μ$W cm-2 resp. PdNPs supported on carbon nanotube electrodes are thus promising catalytic materials for self-powered sensing and hybrid fuel cell applications via consumption of environmental contaminants. [on SciFinder(R)]
Références
- Titre
- Hydrazine Electrooxidation with PdNPs and Its Application for a Hybrid Self-Powered Sensor and N2H4 Decontamination.
- Type de publication
- Article de revue
- Année de publication
- 2017
- Auteurs
- Giroud, Fabien, Gross Andrew J., D Jr. Faggion, Holzinger Michael, de Campos C E. Maduro, Acuna J J. S., Domingos J B., and Cosnier Serge
- Revue
- J. Electrochem. Soc.
- Volume
- 164
- Pagination
- H3052–H3057
- ISSN
- 0013-4651
Soumis le 12 avril 2018