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Evaluating signal and noise spectral density of a qPlus sensor with an active feedback control

  • Manhee Lee*
  • , Sangmin An
  • , Wonho Jhe
  • *Corresponding author for this work
  • Chungbuk National University
  • Seoul National University

Research output: Contribution to journalJournal articlepeer-review

Abstract

Q-control technique enables to actively change the quality factor of the probe oscillation in dynamic atomic force microscopy. The Q-control is realized by adding a self-feedback loop into the original actuation-detection system, in which a damping force with controllable damping coefficient in magnitude and sign is applied to the oscillating probe. While the applied force alters the total damping interaction and thus the overall 'signal' of the probe motion, the added feedback system changes the 'noise' of the motion as well. Here, we systematically investigate the signal, the noise, and the signal-to-noise ratio of the qPlus sensor under the active Q-control. We quantify the noise of the qPlus motion by measuring the noise spectral density, which is reproduced by a harmonic oscillator model including the thermal and the measurement noises. We show that the noise signal increases with the quality factor controlled, scaling as the square root of the quality factor. Because the overall signal is linearly proportional to the quality factor, the signal-to-noise ratio scales as the square root of the quality factor. The Q-controlled qPlus with a highly enhanced Q, up to 10,000 in air, leads to the minimum detectable force gradient of 0.001 N/m, which would enhance the capability of the qPlus sensor for atomic force microscopy and spectroscopy.

Original languageEnglish
Article number055228
JournalAIP Advances
Volume8
Issue number5
DOIs
StatePublished - 2018.05.1

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