谐振器
微尺度化学
悬臂梁
非线性系统
物理
热涨落
噪音(视频)
灵敏度(控制系统)
声学
振荡(细胞信号)
振幅
布朗噪声
达芬方程
分叉
分岔理论
泛音
光电子学
材料科学
光学
电子工程
计算机科学
凝聚态物理
工程类
量子力学
白噪声
电信
化学
数学
谱线
图像(数学)
人工智能
生物化学
数学教育
复合材料
作者
Panos G. Datskos,Nickolay V. Lavrik
摘要
The fundamental sensitivity limit of an appropriately scaled down mechanical resonator can approach one atomic mass
unit when only thermal noise is present in the system. However, operation of such nanoscale mechanical resonators is
very challenging due to minuteness of their oscillation amplitudes and presence of multiple noise sources in real
experimental environments. In order to surmount these challenges, we use microscale cantilever resonators driven to
large amplitudes, far beyond their nonlinear instability onset. Our experiments show that such a nonlinear cantilever
resonator, described analytically as a Duffing oscillator, has mass sensing performance comparable to that of much
smaller resonators operating in a linear regime. We demonstrate femtogram level mass sensing that relies on a
bifurcation point tracking that does not require any complex readout means. Our approaches enable straightforward
detection of mass changes that are near the fundamental limit imposed by thermo-mechanical fluctuations.
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