Radio frequency charge sensing in InAs nanowire double quantum dots
arXiv:1205.6494 · doi:10.1063/1.4729469
Abstract
We demonstrate charge sensing of an InAs nanowire double quantum dot (DQD) coupled to a radio frequency (rf) circuit. We measure the rf signal reflected by the resonator using homodyne detection. Clear single dot and DQD behavior are observed in the resonator response. rf-reflectometry allows measurements of the DQD charge stability diagram in the few-electron regime even when the dc current through the device is too small to be measured. For a signal-to-noise ratio of one, we estimate a minimum charge detection time of 350 microseconds at interdot charge transitions and 9 microseconds for charge transitions with the leads.
Related papers at http://pettagroup.princeton.edu
References in corpus (8)
- Single-shot read-out of an individual electron spin in a quantum dot
- Dipole coupling of a double quantum dot to a microwave resonator
- Fast Single-Charge Sensing with an rf Quantum Point Contact
- Direct Measurement of the Spin-Orbit Interaction in a Two-Electron InAs Nanowire Quantum Dot
- Field Tuning the G-Factor in InAs Nanowire Double Quantum Dots
- Mesoscopic admittance of a double quantum dot
- Measuring the complex admittance of a carbon nanotube double quantum dot
- An in-situ tunable radio-frequency quantum point contact
Cited by in corpus (25)
- Milestones toward Majorana-based quantum computing
- Superconductor-semiconductor hybrid cavity quantum electrodynamics
- Probing quantum devices with radio-frequency reflectometry
- Fast charge sensing of a cavity-coupled double quantum dot using a Josephson parametric amplifier
- Hole Spin Coherence in a Ge/Si Heterostructure Nanowire
- A Radio Frequency Charge Parity Meter
- Sensitive radio-frequency measurements of a quantum dot by tuning to perfect impedance matching
- Charge detection in an array of CMOS quantum dots
- Single-shot readout of hole spins in Ge
- Braiding Majorana zero modes using quantum dots
- Deep Reinforcement Learning for Efficient Measurement of Quantum Devices
- Rapid microwave-only characterization and readout of quantum dots using multiplexed gigahertz-frequency resonators
- Radio-frequency methods for Majorana-based quantum devices: fast charge sensing and phase diagram mapping
- Radio-frequency reflectometry of a quantum dot using an ultra-low-noise SQUID amplifier
- Level spectrum and charge relaxation in a silicon double quantum dot probed by dual-gate reflectometry
- Suppressing quasiparticle poisoning with a voltage-controlled filter
- Spin-orbit coupling and electric-dipole spin resonance in a nanowire double quantum dot
- Fast Hole Tunneling Times in Germanium Hut Wires Probed by Single-Shot Reflectometry
- Cryogenic hyperabrupt strontium titanate varactors for sensitive reflectometry of quantum dots
- Dispersive sensing in hybrid InAs/Al nanowires
- Multi-module microwave assembly for fast read-out and charge noise characterization of silicon quantum dots
- Unravelling Quantum Dot Array Simulators via Singlet-Triplet Measurements
- RF Reflectometry for Readout of Charge Transition in a Physically Defined PMOS Silicon Quantum Dot
- A flux-controlled two-site Kitaev chain
- Dispersive readout of a silicon quantum device using an atomic force microscope-based rf gate sensor