Fast detection of single-charge tunneling to a graphene quantum dot in a multi-level regime
arXiv:1204.4216 · doi:10.1063/1.4733613
Abstract
In situ tunable radio-frequency charge detection is used for the determination of the tunneling rates into and out of a graphene single quantum dot connected to only one lead. An analytical model for calculating these rates in the multi-level tunneling regime is presented and found to correspond very well to our experimental observations.
4 pages, 3 figures
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Cited by in corpus (6)
- Probing quantum devices with radio-frequency reflectometry
- Electronic waiting-time distribution of a quantum-dot spin valve
- Gate-Controlled Quantum Dots Based on Two-Dimensional Materials
- Quantum state readout of individual quantum dots by electrostatic force detection
- Electronic triple-dot transport through a bilayer graphene island with ultrasmall constrictions
- Radio-frequency reflectometry in bilayer graphene devices utilizing micro graphite back-gates