Yoshikawa Genki, Lee Cory J Y, Shiba Kota
J Nanosci Nanotechnol. 2014 Apr;14(4):2908-12. doi: 10.1166/jnn.2014.8604.
Nanomechanical sensors, which have been expected as a promising platform for various applications, will not generate any measureable signal without an appropriate coating (receptor) layer. In spite of this critical dependence on the coating layer, there is almost no guideline for the optimization of these layers in terms of their material properties; such as, Young's modulus, Poisson's ratio, and geometrical parameters. In the present study, the effects of coating layer thickness [3 nm-10 microm], Young's modulus [100 Pa to approximately 1 TPa], and Poisson's ratio [0.10 to approximately 0.45] are investigated with the finite element analysis (FEA), focusing on systems with two dimensional (2D) stress induced either on top of the coating layer (i.e., surface stress) or at the interface between the coating layer and the silicon cantilever. It is found that the coating layer can either enhance or reduce the deflection of nanomechanical sensors depending on its material properties. These results provide guidelines for designing a coating layer to achieve higher sensitivity.
纳米机械传感器有望成为各种应用的理想平台,但如果没有合适的涂层(受体)层,它们将不会产生任何可测量的信号。尽管对涂层有这种关键的依赖性,但在涂层材料特性(如杨氏模量、泊松比和几何参数)的优化方面,几乎没有指导原则。在本研究中,通过有限元分析(FEA)研究了涂层厚度[3纳米 - 10微米]、杨氏模量[100帕至约1太帕]和泊松比[0.10至约0.45]的影响,重点关注在涂层顶部(即表面应力)或涂层与硅悬臂之间的界面处产生二维(2D)应力的系统。研究发现,涂层根据其材料特性既可以增强也可以降低纳米机械传感器的挠度。这些结果为设计涂层以实现更高灵敏度提供了指导原则。