Tip-Mediated Bandgap Tuning for Monolayer Transition Metal Dichalcogenides.

Lin, Meng-Kai; Chen, Guan-Hao; Ho, Ciao-Lin; Chueh, Wei-Chen; Hlevyack, Joseph Andrew; Kuo, Chia-Nung; Fu, Tsu-Yi; Lin, Juhn-Jong et al. · ACS Nano · 2022

basic_science · Level V

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Abstract

Monolayer transition metal dichalcogenides offer an appropriate platform for developing advanced electronics beyond graphene. Similar to two-dimensional molecular frameworks, the electronic properties of such monolayers can be sensitive to perturbations from the surroundings; the implied tunability of electronic structure is of great interest. Using scanning tunneling microscopy/spectroscopy, we demonstrated a bandgap engineering technique in two monolayer materials, MoS<sub>2</sub> and PtTe<sub>2</sub>, with the tunneling current as a control parameter. The bandgap of monolayer MoS<sub>2</sub> decreases logarithmically by the increasing tunneling current, indicating an electric-field-induced gap renormalization effect. Monolayer PtTe<sub>2</sub>, by contrast, exhibits a much stronger gap reduction, and a reversible semiconductor-to-metal transition occurs at a moderate tunneling current. This unusual switching behavior of monolayer PtTe<sub>2</sub>, not seen in bulk semimetallic PtTe<sub>2</sub>, can be attributed to its surface electronic structure that can readily couple to the tunneling tip, as demonstrated by theoretical calculations.