Unveiling the Role of 2D Monolayer Mn-doped MoS$_2$ Material: Toward an Efficient Electrocatalyst for H$_2$ Evolution Reaction
Joy Ekka, Shrish Nath Upadhyay, Frerich J. Keil, Srimanta Pakhira

TL;DR
This study investigates Mn-doped MoS$_2$ monolayers as efficient, noble-metal-free electrocatalysts for hydrogen evolution, revealing low energy barriers and favorable reaction mechanisms through density functional theory analysis.
Contribution
It introduces defect-engineered Mn-doped MoS$_2$ monolayers and demonstrates their superior catalytic activity for HER via detailed DFT calculations.
Findings
Low energy barriers (~10.3 kcal/mol) for HER on Mn-MoS$_2$
Favorable Volmer-Heyrovsky reaction mechanism
Lower Tafel slope due to orbital overlap
Abstract
Two-dimensional (2D) monolayer pristine MoS transition metal dichalcogenide (TMD) is the most studied material because of its promising aspects as nonprecious electrocatalyst for hydrogen evolution reaction (HER). Previous studies have shown that the basal planes of the 2D MoS are catalytically inert and hence, they cannot be used directly in desired applications such as electrochemical HER in industries. Here, we have thoroughly studied the defect-engineered Mn-doped 2D monolayer MoS (Mn-MoS) material where Mn was doped in the pristine MoS to activate the inert basal planes. Using density functional theory (DFT) method, we performed rigorous inspection of electronic structures and properties of the 2D monolayer Mn-MoS to be a promising alternative to noble metal free catalysts for the effective HER. Periodic 2D slab of the monolayer Mn-MoS was created to…
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Taxonomy
Topics2D Materials and Applications · Chalcogenide Semiconductor Thin Films
