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vdW Heterostructure MoSe2/MoSi2P4: A Promising Material for Photocatalytic Hydrogen Production and Photovoltaic Applications
被引:0
|作者:
Saira, Umair
Mumtaz, Umair
[2
]
Aslam, Imran
[1
]
Sajjad, Muhammad
[2
,3
]
机构:
[1] Govt Coll Women Univ Sialkot, Dept Phys, Sialkot 51310, Pakistan
[2] Univ Nottingham Ningbo China, Nottingham Ningbo China Beacons Excellence Res & I, Ningbo 315100, Peoples R China
[3] Univ Nottingham Ningbo China, Lab Carbonaceous Wastes Proc & Proc Intensificat R, Ningbo 315100, Peoples R China
来源:
关键词:
vdW heterostructure;
type-II band alignment;
HER;
photocatalysis;
SLME;
DER-WAALS HETEROSTRUCTURES;
PHOTOLUMINESCENCE;
OPTOELECTRONICS;
MOS2;
D O I:
10.1021/acsaem.4c03351
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
Herein, we have thoroughly investigated the potential of the van der Waals heterostructure (vdWH) MoSe2/MoSi2P4 for sustainable energy applications. With a nominal lattice mismatch of similar to 1.4% between the constituent monolayers, the heterostructure demonstrates dynamic stability (no imaginary phonon frequencies in the entire Brillouin zone) in all three possible stacking configurations, making it a versatile material for advanced technological applications, providing flexibility in synthesis, tunability in properties, and robustness. It exhibits identical band structures in all three stacking configurations, featuring direct band gaps of 1.02 and 1.12 eV at the Heyd-Scuseria-Ernzerhof functional level, with and without spin-orbit coupling. Additionally, it possesses a type-II band alignment to facilitate the separation of photogenerated electron-hole pairs. Our findings further reveal that the conduction band edges are optimally positioned for potential photocatalytic hydrogen production. Furthermore, the heterostructure displays a significant static dielectric constant of 7.82 as well as an optical absorption of 3.50 x 105 cm-1 in the visible region. An intense optical absorption appeared in the ultraviolet region. The determined high spectroscopic limited maximum efficiency of similar to 30%, compared to those of standard high-performance thin-film absorber materials, such as CuInSe2 (similar to 28%) and CdTe (similar to 31.5%), suggests that the studied heterostructure is a promising photovoltaic absorber material. Our findings shed light on the potential of vdWH MoSe2/MoSi2P4 as a viable candidate for next-generation HER photocatalytic activity and photovoltaics.
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