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Two-dimensional ZnO/BlueP van der Waals heterostructure used for visible-light driven water splitting: A first-principles study
被引:13
|作者:
Zhao, Zecheng
[1
]
Yang, Chuanlu
[2
]
Cao, Zanxia
[1
]
Bian, Yunqiang
[1
]
Li, Bingwen
[1
]
Wei, Yunwei
[1
]
机构:
[1] Dezhou Univ, Inst Biophys, Shandong Key Lab Biophys, Dezhou 253023, Peoples R China
[2] Ludong Univ, Sch Phys & Optoelect Engn, Yantai 264025, Peoples R China
关键词:
ZnO/BlueP vdW heterostructure;
Band and electronic structures;
Charge separation and transfer;
Visible-light absorption;
Hydrogen evolution reaction;
BLACK PHOSPHORUS;
BLUE PHOSPHORUS;
ZNO MONOLAYER;
BORON-NITRIDE;
PERFORMANCE;
STRAIN;
GROWTH;
D O I:
10.1016/j.saa.2022.121359
中图分类号:
O433 [光谱学];
学科分类号:
0703 ;
070302 ;
摘要:
Solar driven water splitting for hydrogen generation has been considered as an important method for collecting clean energy. Herein, based on first-principles calculations, we propose that ZnO/BlueP van der Waals heterostructure can realize overall water splitting reaction for hydrogen generation. Strikingly, the band-gap of 1.83 eV is appropriate, and band alignments straddle the water redox potentials, ensuring the occurrence of hydrogen evolution reaction and oxygen evolution reaction. Charge density distribution and carrier mobility exhibit significant charge separation and transfer. Visible-light response is improved compared with those of the isolated monolayers. Moreover, hydrogen evolution reaction is actually realized on the ZnO layer, while oxygen evolution reaction is implemented on the BlueP layer. Through the investigation of the adsorption and dissociation reactions of H2O, we observe that two neighboring H*s prefer to combine to form H-2 by overcoming a lowered energy barrier of 0.75 eV. Strain effect indicates that the lateral compressive strain of-4% to 0% and the vertical tensile strain of 0% to +6% can effectively tune band-gap and band alignments. The results indicate that ZnO/BlueP vdW heterostructure is probable highly efficient photoelectric material used for visible-light driven water splitting for hydrogen generation.(c) 2022 Elsevier B.V. All rights reserved.
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页数:10
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