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硅纳米谐振器中的频率波动。

Frequency fluctuations in silicon nanoresonators.

机构信息

Univ. Grenoble Alpes, F-38000 Grenoble, France.

CEA, LETI, Minatec Campus, F-38054 Grenoble, France.

出版信息

Nat Nanotechnol. 2016 Jun;11(6):552-558. doi: 10.1038/nnano.2016.19. Epub 2016 Feb 29.

Abstract

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 other of the known sources investigated. These results challenge our current understanding of frequency fluctuations and call for a change in practices.

摘要

频率稳定性是纳米谐振器性能的关键。这种稳定性被认为达到了谐振器热诱导振动的分辨率极限。尽管谐振器稳定性的测量和预测通常忽略了机械频率响应的波动,但这些波动最近引起了相当大的理论兴趣。然而,它们的存在很难在实验中证明。在这里,我们通过文献综述表明,所有关于频率稳定性的研究报告的值都比热机械噪声所施加的限制大几个数量级。我们在室温下研究了单晶硅纳米谐振器,发现了类似的差异。我们提出了一种新的方法来表明这是由于频率波动的存在,而且波动的程度出乎意料。这些波动不是由于仪器系统或任何其他已知的来源造成的。这些结果挑战了我们对频率波动的现有理解,并呼吁改变实践。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/266f/4892353/64c135d4689c/emss-66923-f0001.jpg

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