arXiv · 1904.06983
Coulomb blockade in Etched Single and Few Layer MoS2 Nanoribbons
Abstract
Confinement in two-dimensional transition metal dichalcogenides is an attractive platform for trapping single charge and spins for quantum information processing. Here, we present low temperature electron transport through etched 50-70nm MoS2 nanoribbons showing current oscillations as a function of gate voltage. On further investigations current through the device forms diamond shaped domains as a function of source-drain and gate voltage. We associate these current oscillations and diamond shaped current domains with Coulomb blockade due to single electron tunneling through a quantum dot formed in the MoS2 nanoribbon. From the size of the Coulomb diamond, we estimate the quantum dot size as small as 10-35nm. We discuss the possible origins of quantum dot in our nanoribbon device and prospects to control or engineer the quantum dot in such etched MoS2 nanoribbons which can be a promising platform for spin-valley qubits in two-dimensional transition metal dichalcogenides.
Explore related subjects
Keep this discovery
Dharmraj Kotekar-Patil, Jie Deng, Swee Liang Wong, Kuan Eng Johnson Goh. 2019-04-15. Coulomb blockade in Etched Single and Few Layer MoS2 Nanoribbons. https://arxiv.org/abs/1904.06983
Cite the original work for its findings. Save a collection to share your selection of sources.