论文标题

纳米力学硅弦弦谐振器中的频率波动

Frequency fluctuations in nanomechanical silicon nitride string resonators

论文作者

Sadeghi, Pedram, Demir, Alper, Villanueva, Luis Guillermo, Kähler, Hendrik, Schmid, Silvan

论文摘要

高质量的因素($ Q $)纳米力学谐振器对具有前所未有的灵敏度的传感器应用受到了很多关注。尽管兴趣很大,但据报道,很少有人对高Q $谐振器的频率稳定性进行调查。此类谐振器的特征是线宽明显小于通常使用的测量带宽,这与通常考虑的传感器相反。在这里,在开环和闭环配置中研究了高$ Q $ Q $ nitride谐振器的频率稳定性。这里的稳定性是使用艾伦偏差来表征的。对于开环跟踪,发现Allan偏差分为两个方案,一个由谐振器的热力学噪声限制,另一个受到光学传输系统的检测噪声的限制。两个制度之间的过渡点是谐振器响应时间,可以证明对$ q $具有线性依赖性。发现来自光学读数的激光功率波动对频率稳定性提出了基本限制。最后,对于闭环测量值,响应时间不再本质上受到限制,而是由闭环跟踪系统的带宽给出。也给出了基于理论的艾伦偏差,并发现与测量值吻合。这些结果对于理解高Q $谐振器的基本限制及其作为高性能传感器的应用至关重要。

High quality factor ($Q$) nanomechanical resonators have received a lot of attention for sensor applications with unprecedented sensitivity. Despite the large interest, few investigations into the frequency stability of high-$Q$ resonators have been reported. Such resonators are characterized by a linewidth significantly smaller than typically employed measurement bandwidths, which is the opposite regime to what is normally considered for sensors. Here, the frequency stability of high-$Q$ silicon nitride string resonators is investigated both in open-loop and closed-loop configurations. The stability is here characterized using the Allan deviation. For open-loop tracking, it is found that the Allan deviation gets separated into two regimes, one limited by the thermomechanical noise of the resonator and the other by the detection noise of the optical transduction system. The point of transition between the two regimes is the resonator response time, which can be shown to have a linear dependence on $Q$. Laser power fluctuations from the optical readout is found to present a fundamental limit to the frequency stability. Finally, for closed-loop measurements, the response time is shown to no longer be intrinsically limited but instead given by the bandwidth of the closed-loop tracking system. Computed Allan deviations based on theory are given as well and found to agree well with the measurements. These results are of importance for the understanding of fundamental limitations of high-$Q$ resonators and their application as high performance sensors.

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