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Department of Energy Science and Engineering
Photo & Electrochemical Materials Science & Engineering Lab
1. Journal Articles
Chemically assembled 2D-van der Waals WSe2-WC heterostructured photo-anodes for electrochemical devices
Powar, Niket Suresh
;
In, Su-Il
;
Shanmugam, Mariyappan
Department of Energy Science and Engineering
Photo & Electrochemical Materials Science & Engineering Lab
1. Journal Articles
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Title
Chemically assembled 2D-van der Waals WSe2-WC heterostructured photo-anodes for electrochemical devices
Issued Date
2023-07
Citation
Powar, Niket Suresh. (2023-07). Chemically assembled 2D-van der Waals WSe2-WC heterostructured photo-anodes for electrochemical devices. FlatChem, 40. doi: 10.1016/j.flatc.2023.100523
Type
Article
Author Keywords
2D-layered materials
;
Heterostructure
;
Charge transport
;
Photoresponse
Keywords
ATOMIC LAYER DEPOSITION
;
TUNGSTEN CARBIDE
;
VAPOR-DEPOSITION
;
2D MATERIALS
;
MOS2
;
WS2
;
EXFOLIATION
;
EXCITONS
;
GROWTH
;
FILM
ISSN
2452-2627
Abstract
Structural, optical, nanomorphological, photoresponsive and electrochemical charge transport characteristics of chemically assembled 2D-layered Tungsten Selenide (WSe2)-Tungsten Carbide (WC) heterostructure were examined. WC exhibited an optical bandgap of ∼3.2 eV, which did not show any optical absorption in the visible spectrum, and WSe2 showed the same in the spectral range of 200 nm-950 nm with an optical bandgap of ∼1.3 eV. Chemical assembly of WSe2-WC heterostructure was made in which the weight fraction of WSe2 was varied to understand its role in WC. Among the 2, 4, 6 and 8 wt% of WSe2 in WC, we observed that 6 wt% exhibited a dominant absorption and fluorescence emission (∼600 nm). High-resolution transmission electron microscopic studies revealed the d-spacing values of 0.24 nm and 0.33 nm for WSe2 and WC, respectively. Further, the presence of W (4f), Se (2d) and C (1 s) were traced out and studied by X-ray photoelectron spectroscopy. Raman modes A1g and EAg 1 at 150 cm−1 and 250 cm−1 asserted the presence of WSe2 in WC which exhibited A1g at 150 cm−1. In addition, the individual WSe2 and WC along with WSe2-WC heterostructures were subjected to X-ray diffraction to study the crystallite size and strain-induced broadening due to the lattice deformation that occurred at the WSe2-WC heterostructures. Incorporating WSe2 into WC increased the photo-responsive behaviour and facilitated the charge transport as envisaged from the electrochemical impedance spectroscopic studies. © 2023
URI
http://hdl.handle.net/20.500.11750/46288
DOI
10.1016/j.flatc.2023.100523
Publisher
Elsevier B.V.
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