Layer-Dependent and In-Plane Anisotropic Properties of Low-Temperature Synthesized Few-Layer PdSe<sub>2</sub> Single Crystals.

Lu, Li-Syuan; Chen, Guan-Hao; Cheng, Hui-Yu; Chuu, Chih-Piao; Lu, Kuan-Cheng; Chen, Chia-Hao; Lu, Ming-Yen; Chuang, Tzu-Hung et al. · ACS Nano · 2020

basic_science · Level V

Where this comes from

Abstract

Palladium diselenide (PdSe<sub>2</sub>), a peculiar noble metal dichalcogenide, has emerged as a new two-dimensional material with high predicted carrier mobility and a widely tunable band gap for device applications. The inherent in-plane anisotropy endowed by the pentagonal structure further renders PdSe<sub>2</sub> promising for novel electronic, photonic, and thermoelectric applications. However, the direct synthesis of few-layer PdSe<sub>2</sub> is still challenging and rarely reported. Here, we demonstrate that few-layer, single-crystal PdSe<sub>2</sub> flakes can be synthesized at a relatively low growth temperature (300 °C) on sapphire substrates using low-pressure chemical vapor deposition (CVD). The well-defined rectangular domain shape and precisely determined layer number of the CVD-grown PdSe<sub>2</sub> enable us to investigate their layer-dependent and in-plane anisotropic properties. The experimentally determined layer-dependent band gap shrinkage combined with first-principle calculations suggest that the interlayer interaction is weaker in few-layer PdSe<sub>2</sub> in comparison with that in bulk crystals. Field-effect transistors based on the CVD-grown PdSe<sub>2</sub> also show performances comparable to those based on exfoliated samples. The low-temperature synthesis method reported here provides a feasible approach to fabricate high-quality few-layer PdSe<sub>2</sub> for device applications.