Abstract
Three-dimensional (3D) topological insulators (TI) are a new state of quantum matter in which surface states reside in the bulk insulating energy bandgap and are protected by time-reversal symmetry. It is possible to create an energy bandgap as a consequence of the interaction between the conduction band and valence band surface states from the opposite surfaces of a TI thin film, and the width of the bandgap can be controlled by the thin film thickness. The formation of an energy bandgap raises the possibility of thin-film TI-based metal-oxide-semiconductor field-effect-transistors (MOSFETs). In this paper, we explore the performance of MOSFETs based on thin film 3D-TI structures by employing quantum ballistic transport simulations using the effective continuous Hamiltonian with fitting parameters extracted from ab-initio calculations. We demonstrate that thin film transistors based on a 3D-TI structure provide similar electrical characteristics compared to a Si-MOSFET for gate lengths down to 10nm. Thus, such a device can be a potential candidate to replace Si-based MOSFETs in the sub-10nm regime. © 2014 AIP Publishing LLC.
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CITATION STYLE
Akhavan, N. D., Jolley, G., Umana-Membreno, G. A., Antoszewski, J., & Faraone, L. (2014). Thin film three-dimensional topological insulator metal-oxide-semiconductor field-effect-transistors: A candidate for sub-10nm devices. Journal of Applied Physics, 116(8). https://doi.org/10.1063/1.4894152
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