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Phenomenological Model of Non-Evaporated Getter for Micro-electromechanical Systems (MEMS) Applications

机译:用于微机电系统(MEMS)应用的非蒸发吸气剂现象学模型

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There has been increasing interest in the development and use of micro-electromechanical systems (MEMS) for various applications. Some MEM devices such as gyroscopes, accelerometers and bolometers, must be sealed under vacuum, at pressures below 10 millitorr, for efficient operation. A gas absorbing material (getter) is placed in the packages of these devices, to help maintain vacuum levels over service lives of many years. Heating under vacuum, just prior to sealing the package, activates getter, of this type. This study was undertaken to develop a model that could be used to estimate the quantity of getter needed as well as optimize the activation process subject to process constraints on time and temperature. The material studied was a titanium and zirconium-based alloy (7:3 by weight) non-evaporable getter in the form of strips produced by SAES Getters. The zirconium alloy consisted of zirconium (70.0%), vanadium (24.6%) and iron (5.4%) by weight. The getter was analyzed under different ambient conditions of temperature, time and atmospheric pressure. Auger electron spectroscopy (AES) depth profiling was used to analyze the diffusion depth of the contaminant gases absorbed by the getter material under each condition. The data acquired from the depth profiles were fit to a simple diffusion model. This model is currently being validated, by activating the getter material under various ambient conditions, and measuring pressures and gas compositions inside packages using a residual gas analyzer (RGA). The utility of this model for optimization of getter activation and estimating package vacuum levels over time will be discussed.
机译:对各种应用的微机电系统(MEMS)的开发和使用越来越兴趣。一些MEM器件如陀螺仪,加速度计和钻孔计,必须在真空下密封,在10毫托的压力下,用于有效的操作。将气体吸收材料(Getter)放置在这些器件的封装中,以帮助维持多年的服务生活的真空水平。在真空下加热,就在密封包装之前,激活这种类型的吸气剂。本研究开发了一种可以用于估计所需吸气剂量的模型以及优化对时间和温度的过程约束的激活过程。研究的材料是钛和基于锆的合金(7:3重量的)非蒸发吸气剂,其形式由Saes吸管产生的形式。锆合金由锆(70.0%),钒(24.6%)和铁(5.4%)组成。在不同的温度,时间和大气压的不同环境条件下分析吸气剂。螺旋钻电子光谱(AES)深度分析用于分析每个条件下吸收器材料吸收的污染物气体的扩散深度。从深度配置文件获取的数据适合于简单的扩散模型。目前通过在各种环境条件下激活吸气剂材料并使用残留的气体分析仪(RGA)测量封装内的压力和气体组合物来验证该模型。将讨论该模型用于优化吸气剂激活和估算包装真空水平的效用。

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