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Optomechanical transduction of an integrated silicon cantilever probe using a microdisk resonator

机译:使用微盘谐振器的集成硅悬臂探针的光机械转导

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Sensitive transduction of the motion of a microscale cantilever is central to many applications in mass, force, magnetic resonance, and displacement sensing. Reducing cantilever size to nanoscale dimensions can improve the bandwidth and sensitivity of techniques like atomic force microscopy, but current optical transduction methods suffer when the cantilever is small compared to the achievable spot size. Here, we demonstrate sensitive optical transduction in a monolithic cavity-optomechanical system in which a subpicogram silicon cantilever with a sharp probe tip is separated from a microdisk optical resonator by a nanoscale gap. High quality factor (Q ≈ 10~5) microdisk optical modes transduce the cantilever's megahertz frequency thermally driven vibrations with a displacement sensitivity of ≈4.4 × 10 ~(-16) m/(Hz)~(1/2) and bandwidth >1 GHz, and a dynamic range >10~6 is estimated for a 1 s measurement. Optically induced stiffening due to the strong optomechanical interaction is observed, and engineering of probe dynamics through cantilever design and electrostatic actuation is illustrated.
机译:在质量,力,磁共振和位移感测的许多应用中,微悬臂运动的灵敏转换至关重要。将悬臂尺寸减小到纳米级可以提高原子力显微镜等技术的带宽和灵敏度,但是当悬臂尺寸小于可达到的光斑尺寸时,当前的光学转导方法会受到影响。在这里,我们展示了在单片腔光学系统中的灵敏光学转导,其中具有尖锐探针尖端的亚皮下硅悬臂与微盘光学谐振器相隔纳米级间隙。高品质因数(Q≈10〜5)的微光盘光学模式可转换悬臂的兆赫兹频率热驱动振动,位移灵敏度为≈4.4×10〜(-16)m /(Hz)〜(1/2),带宽> 1 GHz,动态范围> 10〜6估计为1 s。观察到由于强烈的光机械相互作用而引起的光致硬化,并说明了通过悬臂设计和静电激励进行探针动力学的工程设计。

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