From Fowler-Nordheim to Non-Equilibrium Green's Function Modeling of Tunneling
arXiv:1509.08170 · doi:10.1109/TED.2016.2565582
Abstract
In this work, an analytic model is proposed which provides in a continuous manner the current-voltage characteristic (I-V) of high performance tunneling field-effect transistors (TFETs) based on direct bandgap semiconductors. The model provides closed-form expressions for I-V based on: 1) a modified version of the well-known Fowler-Nordheim (FN) formula (in the ON-state), and 2) an equation which describes the OFF-state performance while providing continuity at the ON/OFF threshold by means of a term introduced as the "continuity factor". It is shown that traditional approaches such as FN are accurate in TFETs only through correct evaluation of the total band bending distance and the "tunneling effective mass". General expressions for these two key parameters are provided. Moreover, it is demonstrated that the tunneling effective mass captures both the ellipticity of evanescent states and the dual (electron/hole) behavior of the tunneling carriers, and it is further shown that such a concept is even applicable to semiconductors with nontrivial energy dispersion. Ultimately, it is found that the I-V characteristics obtained by using this model are in close agreement with state-of-the-art quantum transport simulations both in the ON- and OFF-state, thus providing validation of the analytic approach.
9 pages, 6 figures
References in corpus (7)
- Tunnel Field-Effect Transistors in 2D Transition Metal Dichalcogenide Materials
- Dielectric Engineered Tunnel Field-Effect Transistor
- Optimum High-k Oxide for the Best Performance of Ultra-scaled Double-Gate MOSFETs
- Zener Tunneling in Semiconducting Nanotube and Graphene Nanoribbon p-n Junctions
- Configurable Electrostatically Doped High Performance Bilayer Graphene Tunnel FET
- Scaling Theory of Electrically Doped 2D Transistors
- A Predictive Analytic Model for High-Performance Tunneling-Field Effect Transistors Approaching Non-Equilibrium Green's Function Simulations
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- Channel thickness optimization for ultra thin and 2D chemically doped TFETs
- Doping profile engineered triple heterojunction TFETs with 12 nm body thickness