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First adhesion measurements of conductive ultrananocrystalline diamond MEMS sidewalls

机译:导电超混凝式钻石MEMS侧壁的第一种粘附测量

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We present the first measuremenst of adhesion between two micro-electromechanical systems (MEMS) surfaces, fully fabricated with boron doped ultrananocrystalline diamond (B-UNCD). This research allows us to explore the potential of conductive UNCD MEMS for the solution of issues like adhesion and friction in micro-devices and describe with accuracy the effects involved. By means of standard lithographic techniques, we have fabricated a diamond micro thermal actuator (chevron type), which is used as a platform for tribological testing. A peculiar effect has been observed in the adhesion phenomenon of UNCD. It involves with high probability, an interaction between hydrocarbon/amorphous carbon layers (a-C) that cover the two diamond contacting surfaces. The as-etched device shows a ‘chewing-gum’ effect in the adhesion curve, probably due to the formation of hydrocarbon/a-C chains after the interaction of the surfaces. This effect disappears when the device is treated in oxygen plasma and the hydrocarbon/a-C is removed. The study of this phenomenon will be followed by more accurate analysis and atomistic simulation and the results will be compared with nitrogen-incorporated UNCD (N-UNCD) fabricated devices.
机译:我们介绍了两个微机电系统(MEMS)表面之间的第一次粘附性,用硼掺杂超混晶金刚石(B-UND)完全制造。该研究允许我们探索导电UNC的潜力,用于解决微器件中粘附和摩擦等问题的问题,并用精度描述所涉及的效果。通过标准的光刻技术,我们制造了一款金刚石微致动器(雪佛龙型),用作摩擦学检测的平台。在UNC的粘附现象中观察到特殊的效果。它涉及高概率,覆盖两个金刚石接触表面的烃/非晶碳层(A-C)之间的相互作用。诸如蚀刻装置在粘合曲线中显示出“口香糖”效果,可能是由于在表面相互作用后形成烃/ A-C链。当器件在氧等离子体中处理时,这种效果消失,除去烃/ A-C.对这种现象的研究将随后是更准确的分析和原子模拟,并将结果与​​氮气掺入的UNC(N-UND标准)进行比较。

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