Qian Ding, Andreas V. Kuhlmann, et al.
Solid-State Electronics
We integrate ambipolar quantum dots in silicon fin field-effect transistors using exclusively standard complementary metal-oxide-semiconductor fabrication techniques. We realize ambipolarity by replacing conventional highly doped source and drain electrodes by a metallic nickel silicide with the Fermi level close to the silicon mid-gap position. Such devices operate in a dual mode, as either a classical field-effect or single-electron transistor. We implement a classical logic NOT gate at low temperature by tuning two interconnected transistors into opposite polarities. In the quantum regime, we demonstrate stable quantum dot operation in the few charge carrier Coulomb blockade regime for both electrons and holes.
Qian Ding, Andreas V. Kuhlmann, et al.
Solid-State Electronics
Veeresh Deshpande, Vladimir Djara, et al.
Japanese Journal of Applied Physics
Veeresh Deshpande, Herwig Hahn, et al.
IEEE T-ED
Lukas Czornomaz, V. Djara, et al.
VLSI Technology 2016