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OPTICALLY EXCITED SELF-RESONANT MICROBEAMS

机译:光学激发自共振微束

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Optically excited self-resonance of polysilicon microbeams sealed in a cofabricated vacuum enclosure has been achieved. Unmodulated low-power laser diodes from 650 to 840 nm have been used to excite resonances ranging from 65 to 750 kHz on microbeams ranging from 0.79 to 2.38 mu m in thickness. The photovoltaic excitation mechanism uses a p-n junction photodiode underneath the microbeam. The structure forms an effective optomechanical modulator at the microbeam resonance frequency, and the resonance can be readily detected with the reflected laser light, which is modulated at levels that can approach 100%. Analysis of the conditions for self-resonance gives predictions of minimum Q-values for self-resonance. Observed Q-values (20 000 to 130 000) are well in excess of the required values. Thicknesses of the microbeam and vacuum gaps above and below it are critical for achieving low oscillation thresholds, which may be as low as 1 mu W of optical power. The clamped-clamped microbeams are sensitive strain transducers with high gage factors, low temperature sensitivity, and wide dynamic range. These are the first optically powered active devices to achieve gain by interchanging optical, electrical, and mechanical energy in a merged structure. They uniquely combine silicon microfabrication technology with optoelectronic technology and can form the basis for a new class of fiber-optic sensors for pressure, temperature, acceleration, and other variables that can be converted to a strain using an appropriate silicon microstructure. [References: 29]
机译:已经实现了密封在共同制造的真空外壳中的多晶硅微束的光激发自共振。 650至840 nm的未调制低功率激光二极管已被用于激发厚度范围为0.79至2.38μm的微光束,其共振频率范围为65至750 kHz。光伏激发机制在微束下方使用p-n结光电二极管。该结构在微束共振频率下形成有效的光机械调制器,并且可以容易地用反射的激光检测共振,该反射的激光以接近100%的水平进行调制。对自谐振条件的分析给出了自谐振的最小Q值的预测。观测到的Q值(20000至130000)远远超出了所需的值。微束的厚度和其上方和下方的真空间隙对于实现低振荡阈值至关重要,该阈值可能低至1μW的光功率。夹紧式微束是灵敏的应变传感器,具有高应变系数,低温灵敏度和宽动态范围。这些是通过交换合并结构中的光能,电能和机械能来获得增益的第一批光学有源器件。它们将硅微制造技术与光电技术独特地结合在一起,可以构成用于压力,温度,加速度和其他变量的新型光纤传感器的基础,这些传感器可以使用适当的硅微结构转换为应变。 [参考:29]

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