Zhang Xiaofei, Gao Fengli, Li Xide
Department of Engineering Mechanics, AML, Tsinghua University, Beijing 100084, China.
Center for Nano and Micro Mechanics, Tsinghua University, Beijing 100084, China.
Sensors (Basel). 2018 Jan 24;18(2):336. doi: 10.3390/s18020336.
Multi-frequency scanning near-field optical microscopy, based on a quartz tuning fork-probe (QTF-p) sensor using the first two orders of in-plane bending symmetrical vibration modes, has recently been developed. This method can simultaneously achieve positional feedback (based on the 1st in-plane mode called the low mode) and detect near-field optically induced forces (based on the 2nd in-plane mode called the high mode). Particularly, the high mode sensing performance of the QTF-p is an important issue for characterizing the tip-sample interactions and achieving higher resolution microscopic imaging but the related researches are insufficient. Here, we investigate the vibration performance of QTF-p at high mode based on the experiment and finite element method. The frequency spectrum characteristics are obtained by our homemade laser Doppler vibrometer system. The effects of the properties of the connecting glue layer and the probe features on the dynamic response of the QTF-p sensor at the high mode are investigated for optimization design. Finally, compared with the low mode, an obvious improvement of quality factor, of almost 50%, is obtained at the high mode. Meanwhile, the QTF-p sensor has a high force sensing sensitivity and a large sensing range at the high mode, indicating a broad application prospect for force sensing.
基于石英音叉探针(QTF-p)传感器并利用面内弯曲对称振动模式的前两个阶次,多频扫描近场光学显微镜最近已被开发出来。该方法可以同时实现位置反馈(基于称为低阶模式的第一阶面内模式)和检测近场光致力(基于称为高阶模式的第二阶面内模式)。特别地,QTF-p的高阶模式传感性能是表征针尖-样品相互作用和实现更高分辨率微观成像的一个重要问题,但相关研究并不充分。在此,我们基于实验和有限元方法研究了QTF-p在高阶模式下的振动性能。通过我们自制的激光多普勒振动计系统获得了频谱特性。研究了连接胶层特性和探针特征对QTF-p传感器在高阶模式下动态响应的影响,以进行优化设计。最后,与低阶模式相比,在高阶模式下品质因数有了明显提高,几乎提高了50%。同时,QTF-p传感器在高阶模式下具有高的力传感灵敏度和大的传感范围,表明其在力传感方面具有广阔的应用前景。