Ion Exchange-Driven Controlled Transformation and Heterostructure Formation of Sn-Based Wafer-Scale 2D Layers
Alireza Ghanipour1,2, Sang Sub Han2,3, Chung Won Lee2
1Department of Materials Science and Engineering, University of Central Florida, Orlando, Florida 32816, United States.
None:
This study explores two synthesis strategies for tin (Sn)-based two-dimensional (2D) transition metal dichalcogenide (TMD) van der Waals (vdW) layers: (1) direct chemical vapor deposition (CVD) growths of wafer-scale tin diselenide (SnSe2), tin disulfide (SnS2), and tin telluride (SnTe), and (2) their post-CVD transformations employing anion exchange reactions. While as-grown 2D SnSe2 layers are confirmed to be intrinsically semiconducting (i.e., bandgap of ∼1 eV and electron mobility of 1.57 cm2/V·s), their transformed counterparts in a form of SnXn with controlled stoichiometries (i.e., X = Te (tellurium) or S (sulfur), and n = 1 or 2) exhibit distinct optoelectronic characteristics. For example, 2D SnTe layers transformed via a CVD telluirzation of 2D SnSe2 layers display highly metallic properties, accompanying with an order-of-magnitude conductivity increase as well as preserving the intrinsic vdW structural integrity. This strategy of simultaneously modulating chemical, electrical, and optical properties enables the fabrication of "all-2D" Sn-based in-plane heterostructure arrays employing 2D/2D metal/semiconductor seamless interfaces.
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