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Role of interfacial properties on MEMS performance and reliability

机译:界面性质对MEMS性能和可靠性的作用

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Abstract: We have constructed a humidity-controlled chamber in which deflections of polysilicon cantilever beams are observed by interferometry, resulting in in-situ adhesion measurements within a fracture mechanics framework. From adhesion energy measurements for uncoated hydrophilic beams, we demonstrate an exponential dependence of adhesion on relative humidity (RH). We can explain this trend with a single-asperity model for capillary condensation. For coated hydrophobic beams, adhesion is independent of RH up to a threshold value which depends on the coating used. However, we have found that exposure to very high RH (greater than or equal to 90%) ambients can cause a dramatic increase in adhesion, surprisingly with a stronger effect for perfluorodecyltrichlorosilane (FDTS, C$-10$/H$- 4$/F$-17$/SiCl$-3$/) than octadeycltrichlorosilane (ODTS, C$- 18$/H$-37$/SiCl$-3$/). Newly developed computational mechanics to measure adhesion in the presence of an applied load allow us to explore how the adhesion increase develops. We believe that water adsorption at silanol sites at the FDTS/substrate interface, possibly exacerbated by coupling agent migration, leads to water islanding and the subsequent adhesion increase at very high RH levels. !50
机译:摘要:我们建立了一个湿度控制室,通过干涉法观察多晶硅悬臂梁的挠度,从而在断裂力学框架内进行了原位附着力测量。通过对未涂覆的亲水性梁的粘附能测量,我们证明了粘附力对相对湿度(RH)的指数依赖性。我们可以用毛细冷凝的单粗糙模型来解释这种趋势。对于涂覆的疏水性梁,在取决于使用的涂层的阈值以下,粘附力与RH无关。但是,我们发现,暴露于非常高的相对湿度(大于或等于90%)的环境中会导致粘合力急剧增加,令人惊讶的是对全氟癸基三氯硅烷(FDTS,C $ -10 $ / H $ -4 $ / F $ -17 $ / SiCl $ -3 $ /),而不是十八烷基三氯硅烷(ODTS,C $ -18 $ / H $ -37 $ / SiCl $ -3 $ /)。最新开发的用于在施加负载的情况下测量粘附力的计算机制使我们能够探索粘附力增加如何发展。我们认为,FDTS /底物界面处硅烷醇位点的水吸附(可能由于偶联剂迁移而加剧)会导致水孤岛,并随后在非常高的RH水平下增加粘合力。 !50

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