Two dimensional transition metal dichalcogenide based bilayer heterojunctions for efficient solar cells and photocatalytic applications
Khushboo Dange, Rachana Yogi, Alok Shukla

TL;DR
This study uses first-principles calculations to explore bilayer TMD heterostructures' electronic and optical properties, aiming to identify efficient solar cell and photocatalytic applications.
Contribution
It provides a comprehensive theoretical analysis of six TMD heterostructures, highlighting their potential for high-efficiency solar cells and photocatalytic hydrogen evolution.
Findings
Maximum predicted PCE of 19.25% for WSe2/WS2 heterojunction.
All heterostructures exhibit type II band alignment at DFT level.
Three heterostructures are suitable for photocatalytic hydrogen evolution.
Abstract
This work presents a first-principles study of the optoelectronic properties of vertically-stacked bilayer heterostructures composed of 2D transition-metal dichalcogenides (TMDs). The calculations are performed using the density-functional theory (DFT) and many-body perturbation theory within -BSE methodology. We aim to propose these TMD heterostructures for solar cell applications. The TMD monolayers comprising the heterojunctions considered in this work are , , , and due to their favorable band gaps, high carrier mobility, robust absorption in the visible region, and excellent stability. These four TMD monolayers provide the basis for six heterostructures. Consequently, we have examined the structural, electronic, and optical properties of six heterostructures (, , , , , and…
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