Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/11306
Title: Unraveling the Electrocatalytic Activity of Platinum Doped Zirconium Disulfide toward the Oxygen Reduction Reaction
Authors: Singh, Ashok Kumar Manihar
Pakhira, Srimanta
Keywords: Cathodes;Density functional theory;Electrocatalysts;Electrolytic reduction;Electronic properties;Energy gap;Fuel cells;Monolayers;Oxygen;Platinum compounds;Renewable energy resources;Sulfur compounds;Transition metals;Van der Waals forces;Zirconium compounds;Basal planes;Basal-planes;Dichalcogenides;Electrocatalytic activity;O2 reduction;Oxygen reduction reaction;Reaction mechanism;Reaction pathways;Reduction reaction;Renewable energy technologies;Cost effectiveness
Issue Date: 2023
Publisher: American Chemical Society
Citation: Singh, A., & Pakhira, S. (2023). Unraveling the electrocatalytic activity of platinum doped zirconium disulfide toward the oxygen reduction reaction. Energy and Fuels, 37(1), 567-579. doi:10.1021/acs.energyfuels.2c02831
Abstract: The O2reduction reaction (ORR) is one of the important reactions and the heart of renewable energy technology, ranging from fuel cells to metal-air batteries, and it is a large and challenging task to build a cost-effective and efficient cathodic material for the electrocatalytic ORR. We computationally designed Pt-doped 2D monolayer zirconium disulfide (i.e., Pt-ZrS2) transition metal dichalcogenides (TMDs) and studied the electronic and structural properties by employing the hybrid periodic Density Functional Theory (DFT-D) method with van der Waals dispersion corrections. The electronic properties calculations suggest the semiconducting character of Pt-ZrS2with the electronic band gap of 1.95 eV which is an essential aspect in studying the ORR mechanism. The basal plane of 2D Pt-ZrS2shows exceptional electrocatalytic activities toward the ORR with a high four-electron (4e-) reduction reaction pathway selectivity. Here, the detailed ORR pathway with the mechanism was envisaged on the surfaces of 2D monolayer Pt-ZrS2TMD by employing the same DFT-D method. Both the dissociative (O2∗ → 2O*) and associative (O2∗ → O_OH*) ORR mechanisms have been investigated, and it was found that only the dissociative reaction path is favorable. The adsorption energy has been calculated in each intermediate state during the ORR which guides us to predict the potential of Pt-ZrS2as an effective electrocatalyst for the ORR. This study reveals that substituting a Zr atom in the 2 × 2 supercell of the monolayer ZrS2with a Pt atom activates the inert basal planes, advancing to its superior electrochemical reactivity for boosting the molecular O2and successive ORR steps. Therefore, Pt-ZrS2can be used to design 2D cathode material for fuel cell contents. © 2023 American Chemical Society. All rights reserved.
URI: https://doi.org/10.1021/acs.energyfuels.2c02831
https://dspace.iiti.ac.in/handle/123456789/11306
ISSN: 0887-0624
Type of Material: Journal Article
Appears in Collections:Department of Metallurgical Engineering and Materials Sciences
Department of Physics

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