condensed matter physics

Current-based RF charge sensing in a carbon nanotube

arXiv:2607.28313

summary

The paper presents a current-mode charge sensor built from a suspended carbon nanotube that operates at a 1.25 MHz RLC resonance, achieving 0.15 µe/√Hz charge sensitivity and enabling fast, high‑fidelity single‑shot readout of a double quantum dot.

Abstract

Ultra-sensitive charge detection is a widely used tool for quantum electronics with applications in quantum information processing and in probing the physics of condensed matter systems. Existing approaches require either an impedance-matched resonant circuit, or millimeter-scale proximity between amplifier and sample, both adding complexity and constraining device design. In this work, we introduce a current-mode charge sensor in a suspended carbon nanotube, operating at the MHz resonance of an RLC tank circuit and achieving a charge sensitivity of . We utilize it to measure a double quantum dot (DQD) electrostatically defined in the same nanotube, revealing a highly regular charge stability diagram. We perform single-shot readout of the DQD charge state at an integration time of , without any false assignments over measurements and a signal-to-noise ratio of 17 exceeding the state of the art.

Topics & keywords

#carbon nanotube#charge sensing#double quantum dot#current-mode detection#mesoscopic electronicscharge sensitivityRLC tank circuitsingle-shot readoutsuspended nanotubesignal-to-noise ratio
Current-based RF charge sensing in a carbon nanotube · wovepaper