Periodic Reporting for period 1 - CNTQUBIT (Carbon nanotube based nanomechanical qubit)
Período documentado: 2021-04-01 hasta 2023-03-31
This project sought to demonstrate a fundamentally new type of platform to host such qubits. The qubit is realized with a carbon nanotube (CNT) whose mechanical vibrations are coupled to an embedded and trapped electron. The first objective was to demonstrate the interplay between the vibrations and the electron, whilst the second was to utilize this coupling for the formation of a qubit.
The image shows a scanning electron micrograph image of our platform. The carbon nanotube is indicated by the red arrows are grows from catalyst nanoparticles in the blue regions. The electron is confined along the suspended nanotube in the small region indicated by the dashed yellow rectangle by applying voltages to the electrodes highlighted in red.
o Single quantum dot (SQD) lithographic designs. 12 wafers.
o Double quantum dot (DQD) lithographic designs. 56 wafers.
o Superconducting microwave cavity designs. 27 wafers.
o Carbon nanotubes devices in SQD and DQD architectures.
Catalyst deposition, CVD, vacuum probe station measurements
Cryogenic measurements in dilution refrigerator
o Communication of work and results at 4 conferences
Main results
o Ultra-strong coupling between SQD and mechanical vibrations (published)
o Robust lithographic architecture for making DQDs (published)
o High quality factor superconducting resonators in CVD compatible material
Single QDs were also ultra-strongly coupled to mechanical vibrations of the carbon nanotube with a coupling rate 16.5 times larger than the mechanical frequency. This is far beyond the state-of-the-art for electromechanical resonators. The previous state-of-the-art was 2.7. Additionally, we observed non-linear thermal vibrations as a result of this ultrastrong coupling. This progress may