Low-Symmetry Van der Waals Dielectric GaInS<sub>3</sub> Triggered 2D MoS<sub>2</sub> Giant Anisotropy via Symmetry Engineering.

Sun, Zongdong; Liu, Jie; Xu, Yongshan; Xiong, Xiong; Li, Yuan; Wang, Meihui; Liu, Kailang; Li, Huiqiao et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

Low-symmetry structures in van der Waals materials have facilitated the advancement of anisotropic electronic and optoelectronic devices. However, the intrinsic low symmetry structure exhibits a small adjustable anisotropy ratio (1-10), which hinders its further assembly and processing into high-performance devices. Here, a novel 2D anisotropic dielectric, GaInS<sub>3</sub> (GIS), which induces isotropic MoS<sub>2</sub> to exhibit significant anisotropic optical and electrical responses is demonstrated. With the excellent gate modulation ability of 2D GIS (dielectric constant k ∼12), MoS<sub>2</sub> field effect transistor (FET) shows an adjustable conductance ratio from isotropic to anisotropic under dual-gate modulation, up to 10<sup>6</sup>. Theoretical calculations indicate that anisotropy originates from lattice mismatch-induced charge density deformation at the interface. Moreover, the MoS<sub>2</sub>/GIS photodetector demonstrates high responsivity (≈4750 A W<sup>-1</sup>) and a large dichroic ratio (≈167). The anisotropic van der Waals dielectric GIS paves the way for the development of 2D transition metal dichalcogenides (TMDCs) in the fields of anisotropic photonics, electronics, and optoelectronics.