Authors
Marc Sansa, Eric Sage, Elizabeth C Bullard, Marc Gély, Thomas Alava, Eric Colinet, Akshay K Naik, Luis Guillermo Villanueva, Laurent Duraffourg, Michael L Roukes, Guillaume Jourdan, Sébastien Hentz
Publication date
2016/6/1
Journal
Nature nanotechnology
Volume
11
Issue
6
Pages
552-558
Publisher
Nature Publishing Group
Description
Frequency stability is key to the performance of nanoresonators. This stability is thought to reach a limit with the resonator's ability to resolve thermally induced vibrations. Although measurements and predictions of resonator stability usually disregard fluctuations in the mechanical frequency response, these fluctuations have recently attracted considerable theoretical interest. However, their existence is very difficult to demonstrate experimentally. Here, through a literature review, we show that all studies of frequency stability report values several orders of magnitude larger than the limit imposed by thermomechanical noise. We studied a monocrystalline silicon nanoresonator at room temperature and found a similar discrepancy. We propose a new method to show that this was due to the presence of frequency fluctuations, of unexpected level. The fluctuations were not due to the instrumentation system, or to any …
Total citations
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Scholar articles
M Sansa, E Sage, EC Bullard, M Gély, T Alava… - Nature nanotechnology, 2016