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volume 6 issue 1 pages 7

Transition Metal Oxides (WO3-ZrO2) as Promoters and Hydrogen Adsorption Modulators in Pt/WO3-ZrO2-C Electrocatalyst for the Reduction of NOx

Publication typeJournal Article
Publication date2025-03-05
scimago Q2
SJR0.709
CiteScore7.4
Impact factor
ISSN26733293
Abstract

The electrocatalytic reduction of nitric oxide and nitrogen dioxide (NOx) remains a significant challenge due to the need for stable, efficient, and cost-effective materials. This study presents a novel support system for NOx reduction in alkaline media, composed of ZrO2-WO3-C (ZWC), synthesized via coprecipitation. Platinum nanoparticles (10 wt.%) were loaded onto ZWC and Vulcan carbon support, using similar methods for comparison. Comprehensive physicochemical and electrochemical analyses (N2 physisorption, XRD, XPS, SEM, TEM, and cyclic and linear voltammetry) revealed that PtZWC outperformed PtC and commercial PtEtek in NOx electrocatalysis. Notably, PtZWC exhibited the highest total electric charge for NOx reduction. At the same time, the hydrogen evolution reaction (HER) was shifted to more negative cathodic potentials, indicating reduced hydrogen coverage and a modified dissociative Tafel mechanism on platinum. Additionally, the combination of WO3 and ZrO2 in ZWC enhanced electron transfer and suppressed HER by reducing NO and hydrogen atom adsorption competition. While the incorporation of WO3 and ZrO2 lowered the surface area to 96 m2/g, it significantly improved pore properties, facilitating better Pt nanoparticle dispersion (3.06 ± 0.85 nm, as confirmed by SEM and TEM). XRD analysis identified graphite and Pt phases, with monoclinic WO3 broadening PtZWC peaks (20–25°). At the same time, XPS confirmed oxidation states of Pt, W, and Zr and tungsten-related oxygen vacancies, ensuring chemical stability and enhanced catalytic activity.

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Santiago Ramírez C. R. et al. Transition Metal Oxides (WO3-ZrO2) as Promoters and Hydrogen Adsorption Modulators in Pt/WO3-ZrO2-C Electrocatalyst for the Reduction of NOx // Electrochem. 2025. Vol. 6. No. 1. p. 7.
GOST all authors (up to 50) Copy
Santiago Ramírez C. R., Hernández-Pichardo M. L., Hernández-Pichardo M., Manzo-Robledo A., Acuña‐Leal D. A., Acuña-Leal D., Gracia Pinilla M. A. Transition Metal Oxides (WO3-ZrO2) as Promoters and Hydrogen Adsorption Modulators in Pt/WO3-ZrO2-C Electrocatalyst for the Reduction of NOx // Electrochem. 2025. Vol. 6. No. 1. p. 7.
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TY - JOUR
DO - 10.3390/electrochem6010007
UR - https://www.mdpi.com/2673-3293/6/1/7
TI - Transition Metal Oxides (WO3-ZrO2) as Promoters and Hydrogen Adsorption Modulators in Pt/WO3-ZrO2-C Electrocatalyst for the Reduction of NOx
T2 - Electrochem
AU - Santiago Ramírez, C R
AU - Hernández-Pichardo, Martha L.
AU - Hernández-Pichardo, Martha
AU - Manzo-Robledo, A.
AU - Acuña‐Leal, Daniel A.
AU - Acuña-Leal, Daniel
AU - Gracia Pinilla, M A
PY - 2025
DA - 2025/03/05
PB - MDPI
SP - 7
IS - 1
VL - 6
SN - 2673-3293
ER -
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@article{2025_Santiago Ramírez,
author = {C R Santiago Ramírez and Martha L. Hernández-Pichardo and Martha Hernández-Pichardo and A. Manzo-Robledo and Daniel A. Acuña‐Leal and Daniel Acuña-Leal and M A Gracia Pinilla},
title = {Transition Metal Oxides (WO3-ZrO2) as Promoters and Hydrogen Adsorption Modulators in Pt/WO3-ZrO2-C Electrocatalyst for the Reduction of NOx},
journal = {Electrochem},
year = {2025},
volume = {6},
publisher = {MDPI},
month = {mar},
url = {https://www.mdpi.com/2673-3293/6/1/7},
number = {1},
pages = {7},
doi = {10.3390/electrochem6010007}
}
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Santiago Ramírez, C. R., et al. “Transition Metal Oxides (WO3-ZrO2) as Promoters and Hydrogen Adsorption Modulators in Pt/WO3-ZrO2-C Electrocatalyst for the Reduction of NOx.” Electrochem, vol. 6, no. 1, Mar. 2025, p. 7. https://www.mdpi.com/2673-3293/6/1/7.