Bowing-alleviated continuous bandgap engineering of wafer-scale WS2xSe2(1-x) monolayer alloys and their assembly into hetero-multilayers

材料科学 带隙 异质结 半导体 单层 光电子学 化学气相沉积 薄脆饼 旋节分解 直接和间接带隙 硫族元素 纳米技术 结晶学 化学 相(物质) 有机化学
作者
Hee Seong Kang,Jung Hoon Kang,Sol Lee,Kihyun Lee,Do Hyoung Koo,Yong‐Sung Kim,Young Joon Hong,Yong-Jin Kim,Kwanpyo Kim,Donghun Lee,Chul‐Ho Lee
出处
期刊:Npg Asia Materials [Nature Portfolio]
卷期号:14 (1) 被引量:18
标识
DOI:10.1038/s41427-022-00437-w
摘要

Abstract Bandgap engineering of compound semiconductors and the fabrication of bandgap-modulated heterostructures are important for enabling the development of modern optoelectronics. However, these engineering processes are challenging for two-dimensional (2D) semiconductors of transition metal dichalcogenides, particularly on a large scale. Herein, we report the wafer-scale homogeneous growth of composition-modulated WS 2 x Se 2(1- x ) alloys with a continuously tunable bandgap using metal–organic chemical vapor deposition. Well-optimized growth produces monolayer films with excellent homogeneity over the entire wafer. The substitutional atomic chalcogen (S, Se) concentration in WS 2 x Se 2(1- x ) alloys is precisely controlled by varying the flow rate of the metal–organic precursors, leading to a bandgap modulation from 1.67 to 2.05 eV, as determined from absorbance spectra. Notably, the optical bandgap of WS 2 x Se 2(1- x ) alloys exhibits a nearly linear relationship with the chalcogen composition, implying a low bowing effect. This bowing-alleviated bandgap modulation is attributed to the small lattice mismatch, strain relaxation, and thermodynamic miscibility in the WS 2 x Se 2(1- x ) alloys, as confirmed by density-functional theory calculations. Furthermore, the fabrication of hetero-multilayers by stacking differently alloyed films is demonstrated. The produced heterostructure film exhibits a broad spectral absorbance distinct from that of the individual layers. The findings of this study provide insights for the advancement of versatile design of functional 2D optoelectronics.
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