Electrostatic doping-based all GNR tunnel field-effect transistor
The present invention disclose an Electrostatic doping (ED)-based graphene nanoribbon (GNR) tunneling field-effect transistor (TFET) with tri-gate design. This device uses hydrogen-passivated GNR heterojunction as a carrier path way and functions as a power switch providing a switching speed of ˜ 0.3 ps −1 an I ON /I OFF ratio as high as 10 14 with the on-state current in the order of 10 3 μA/μm. This disclosed invention consists of two electrode, two electrode extensions, six metallic gate regions, and six dielectric regions.
1. An energy-efficient transistor model for power switch application comprising the following:
a carrier path made of hydrogen-passivated armchair Graphene Nano-ribbon (GNR) heterojunction, which can be divided into three sections:
a channel made of 3p dimmer armchair GNR (p is integer number greater than 3), a source and a drain made of same type 3p+2 dimmer armchair GNR, the value of p takes same value for channel, source and drain,
two electrodes, made of the same material with the source and drain, connected to source and drain at the two ends, respectively,
two doping gate at left/right sides of the device, sandwiching the source and drain part of the GNR path,
one control gate in the middle of the device, sandwiching the channel part of the GNR path,
the gates are made of two layers:
copper in the top layer and diamond in the bottom layer,
the doping gates at source and drain are applied with opposite voltages and the control gate is applied with a voltage range between −1.5V to +1.5V, where the device is functioning, the transistor can function as a power switch with a large on/off current ratio of 10{circumflex over ( )}15.