Instituto de Micro y Nanotecnologı́a (IMN-CNM, CSIC), Isaac Newton 8, Tres Cantos, 28760 Madrid, Spain.
Nano Lett. 2020 Apr 8;20(4):2359-2369. doi: 10.1021/acs.nanolett.9b04909. Epub 2020 Mar 25.
We describe an optical transduction mechanism to measure the flexural mode vibrations of vertically aligned nanowires on a flat substrate with high sensitivity, linearity, and ease of implementation. We demonstrate that the light reflected from the substrate when a laser beam strikes it parallel to the nanowires is modulated proportionally to their vibration, so that measuring such modulation provides a highly efficient resonance readout. This mechanism is applicable to single nanowires or arrays without specific requirements regarding their geometry or array pattern, and no fabrication process besides the nanowire generation is required. We show how to optimize the performance of this mechanism by characterizing the split flexural modes of vertical silicon nanowires in their full dynamic range and up to the fifth mode order. The presented transduction approach is relevant for any application of nanowire resonators, particularly for integrating nanomechanical sensing in functional substrates based on vertical nanowires for biological applications.
我们描述了一种光学转换机制,用于以高灵敏度、线性度和易于实现的方式测量平面衬底上垂直排列纳米线的弯曲模式振动。我们证明,当激光束平行于纳米线照射到衬底上时,从衬底反射的光会与它们的振动成比例地调制,因此测量这种调制提供了一种高效的共振读出。该机制适用于单根纳米线或阵列,对其几何形状或阵列模式没有特定要求,并且除了纳米线生成之外不需要任何制造过程。我们通过对垂直硅纳米线的分裂弯曲模式进行全动态范围和高达第五阶模式的特性化,展示了如何通过优化该机制的性能。所提出的转换方法与纳米线谐振器的任何应用都相关,特别是对于在基于垂直纳米线的功能衬底中集成用于生物应用的纳米机械传感。