High-frequency self-aligned graphene transistors with transferred gate stacks

R Cheng, J Bai, L Liao, H Zhou… - Proceedings of the …, 2012 - National Acad Sciences
R Cheng, J Bai, L Liao, H Zhou, Y Chen, L Liu, YC Lin, S Jiang, Y Huang, X Duan
Proceedings of the National Academy of Sciences, 2012National Acad Sciences
Graphene has attracted enormous attention for radio-frequency transistor applications
because of its exceptional high carrier mobility, high carrier saturation velocity, and large
critical current density. Herein we report a new approach for the scalable fabrication of high-
performance graphene transistors with transferred gate stacks. Specifically, arrays of gate
stacks are first patterned on a sacrificial substrate, and then transferred onto arbitrary
substrates with graphene on top. A self-aligned process, enabled by the unique structure of …
Graphene has attracted enormous attention for radio-frequency transistor applications because of its exceptional high carrier mobility, high carrier saturation velocity, and large critical current density. Herein we report a new approach for the scalable fabrication of high-performance graphene transistors with transferred gate stacks. Specifically, arrays of gate stacks are first patterned on a sacrificial substrate, and then transferred onto arbitrary substrates with graphene on top. A self-aligned process, enabled by the unique structure of the transferred gate stacks, is then used to position precisely the source and drain electrodes with minimized access resistance or parasitic capacitance. This process has therefore enabled scalable fabrication of self-aligned graphene transistors with unprecedented performance including a record-high cutoff frequency up to 427 GHz. Our study defines a unique pathway to large-scale fabrication of high-performance graphene transistors, and holds significant potential for future application of graphene-based devices in ultra–high-frequency circuits.
National Acad Sciences