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Updated: May 19, 2026

A Standard and Reliable Method to Fabricate Two-Dimensional Nanoelectronics
Published on: August 28, 2018
Mechanistic Insights into High Electron Mobility in 2D Bi2O2Se Field-Effect Transistors
1Department of Physics, Faculty of Science, Srinakharinwirot University, Bangkok 10110, Thailand.
Abstract:
Bismuth oxyselenide (Bi2O2Se), a two-dimensional (2D) semiconductor, is a promising postsilicon channel material for field-effect transistors (FETs) at sub-3 nm technology nodes. It offers high intrinsic mobility and a stable, lattice-matched interface with its native oxide, Bi2SeO5. Reported mobilities are high, reaching 4.7 × 105 cm2 V-1 s-1 at 2 K and 812 cm2 V-1 s-1 at 300 K in three-dimensional (3D)-FETs, and 2.0 × 104 cm2 V-1 s-1 at 2 K and 313 cm2 V-1 s-1 at 300 K in 2D-FETs. However, the dominant scattering mechanisms that limit this mobility remain unclear. We develop a unified mobility model that incorporates ionized impurity, surface roughness, longitudinal optical phonon, electron-electron, and acoustic deformation potential scattering. The model quantitatively reproduces experimental data from the bulk material to the monolayer limit. We found that in ultrathin channels, surface roughness scattering is strongly reduced, while acoustic phonon deformation potential scattering becomes the dominant limiting mechanism. These insights establish a mechanistic understanding of charge transport in Bi2O2Se and provide crucial guidelines for device design at sub-1 nm nodes.
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