Improving the read-out of the resonance frequency of nanotube mechanical resonators

Journal Article (2018)
Author(s)

J. Schwender (The Barcelona Institute of Science and Technology)

I. Tsioutsios (The Barcelona Institute of Science and Technology)

A. Tavernarakis (The Barcelona Institute of Science and Technology)

Quan Dong (Centre national de la recherche scientifique (CNRS))

Yong Jin (Centre national de la recherche scientifique (CNRS))

U Staufer (Barcelona Institute of Science and Technology (BIST), TU Delft - Micro and Nano Engineering)

A. Bachtold (The Barcelona Institute of Science and Technology)

Research Group
Micro and Nano Engineering
Copyright
© 2018 J. Schwender, I. Tsioutsios, A. Tavernarakis, Quan Dong, Yong Jin, U. Staufer, A. Bachtold
DOI related publication
https://doi.org/10.1063/1.5045309
More Info
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Publication Year
2018
Language
English
Copyright
© 2018 J. Schwender, I. Tsioutsios, A. Tavernarakis, Quan Dong, Yong Jin, U. Staufer, A. Bachtold
Research Group
Micro and Nano Engineering
Issue number
6
Volume number
113
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Abstract

We report on an electrical detection method of ultrasensitive carbon nanotube mechanical resonators. The noise floor of the detection method is reduced using a RLC resonator and an amplifier based on a high electron mobility transistor cooled at 4.2 K. This allows us to resolve the resonance frequency of nanotube resonators with an unprecedented quality. We show that the noise of the resonance frequency measured at 4.2 K is limited by the resonator itself, and not by the imprecision of the measurement. The Allan deviation reaches ∼10-5 at 125 ms integration time. When comparing the integration time dependence of the Allan deviation to a power law, the exponent approaches ∼1/4. The Allan deviation might be limited by the diffusion of particles over the surface of the nanotube. Our work holds promise for mass spectrometry and surface science experiments based on mechanical nano-resonators.

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