Theoretical model of a new type tunneling transistor
Abstract
A tunneling transistor without heterojunction as a theoretical design, or more precisely controlled electron current transmission by barrier potential, is under consideration. The electrons from the conduction band of the source tunnel through the forbidden gap of the channel to the conduction band of the drain. The tunneling current calculations made at helium temperature for the example InAs-InAs-InAs, Au-GaSe-Au and Al-AlN-Al structures show that for a constant source-drain voltage, , of several mV, changes in the gate voltage, , applied to the channel within the voltage range of 0 - 2e change by even 10 orders of magnitude. Unlike the existing solutions such as tunnel field-effect-transistor (TFET), the proposed device uses the change of (gate voltage), i.e. the change of the electrostatic potential in the channel, to modify the imaginary wave vector of tunnel current electrons. Consequently, the gate voltage controls the damping force of the electrons wave functions and thus the magnitude of the tunneling current, . The effect of increasing temperature, T, on relation was also tested. It was found that only in structures with a wide forbidden channel gap this effect is insignificant (at least up to T=300 K).
Keywords
Cite
@article{arxiv.2208.05188,
title = {Theoretical model of a new type tunneling transistor},
author = {Pawel Pfeffer},
journal= {arXiv preprint arXiv:2208.05188},
year = {2023}
}
Comments
6 pages, 12 figures