Nanostructured Pt-Doped 2D MoSe$_2$: An Efficient Bifunctional Electrocatalyst for both Hydrogen Evolution and Oxygen Reduction Reactions
Shrish Nath Upadhyay, Srimanta Pakhira

TL;DR
This study computationally demonstrates that Pt-doped 2D MoSe₂ is an efficient bifunctional electrocatalyst for hydrogen evolution and oxygen reduction, with low energy barriers and high activity, promising for clean energy applications.
Contribution
The paper introduces a novel Pt-doped 2D MoSe₂ catalyst with enhanced bifunctional electrocatalytic activity for HER and ORR, supported by detailed DFT calculations.
Findings
Pt doping activates the inert basal plane of MoSe₂.
The catalyst follows Volmer-Heyrovsky mechanism for HER.
It exhibits low energy barriers and high turnover frequency for both reactions.
Abstract
TMDs are a new family of 2D materials with features that make them appealing for potential applications in nanomaterials science and engineering. Although, the edges of the 2D TMDs show excellent electrocatalytic performance, their basal plane is inert which hinders the industrial applications for electrocatalysis. Here, we have computationally designed the 2D monolayer MoSe and studied its electronic properties with electrocatalytic activities. Pt-atom has been doped in the pristine 2D MoSe to activate the inert basal plane resulting zero bandgap. This study reveals that the Pt-MoSe is an excellent bifunctional electrocatalyst for both the hydrogen evolution reaction (HER) and oxygen reduction reaction (ORR) with the aid of the DFT. Periodic hybrid DFT method has been applied to compute the electronic properties of both the pristine MoSe and Pt-MoSe. To determine…
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Taxonomy
TopicsElectrocatalysts for Energy Conversion · Fuel Cells and Related Materials · Electrochemical Analysis and Applications
