真空封装对微结构粘滞力的影响

Junwen Liu, Jing Song, Qing-An Huang, Jie-ying Tang
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引用次数: 0

摘要

介绍了真空封装作为MEMS(微电子机械系统)器件封装的主要方式。真空封装器件的可靠性已成为其能否成功商业化的最重要因素。随着尺寸的减小和材料的加工,器件与衬底之间普遍存在的表面效应变得越来越有效。湿法蚀刻牺牲层形成的表面微机械结构通常受到与衬底粘附问题的困扰。器件在约束下的失效已成为影响MEMS可靠性的主要因素。本文提出了一种实验方法来分析表面效应的两种重要力:毛细力和范德华力。我们采用悬臂梁作为经典的MEMS器件,梁的结构是专门为实验设计的。我们认为它可以大大降低真空环境下的毛细力,所以我们通过两种不同的环境实验将这两种力分开。通过模拟不同包装环境,将毛细管力与粘性力分离,分析了粘性力的组成。实验结果和理论总结可以为微结构的设计和预测提供有益的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Vacuum Package on the Stiction Force of Micro-structure
Vacuum packaging is introduced as a main mode for the MEMS (micro-electronics-mechanical-system) devices packaging. The reliability of devices in a vacuum package has become the most important part for the successful commercialization. With the decrease in the dimension and material processing, the ubiquitous surface effect between device and substrate has become more and more effective. Surface-micromachined structures formed by the wet etching of sacrificial layers are commonly plagued by problems of sticking to the substrate. The failure of devices according to the stiction has become a main factor of the MEMS reliability. In this paper, we present an experimental way to analyze the two important force of the surface effect: the capillary force and the van der Waals force. We use the cantilever beam as a classic MEMS device, and the structure of beam is specially designed for the experiment. We believe that it can greatly reduce the capillary force in the vacuum environment, so we separate the two forces through two different environmental experiments. This paper simulates different packaging environment to divide capillary force from stiction force, and analyzes the composition of the stiction force. The experimental results and theoretical summary could provide a useful reference for the design and predict the stiction failure of micro-structure.
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