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Nanotwinned metal MEMS films with unprecedented strength and stability

机译:纳米级金属MEMS薄膜具有前所未有的强度和稳定性

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摘要

Silicon-based microelectromechanical systems (MEMS) sensors have become ubiquitous in consumer-based products, but realization of an interconnected network of MEMS devices that allows components to be remotely monitored and controlled, a concept often described as the “Internet of Things,” will require a suite of MEMS materials and properties that are not currently available. We report on the synthesis of metallic nickel-molybdenum-tungsten films with direct current sputter deposition, which results in fully dense crystallographically textured films that are filled with nanotwins. These films exhibit linear elastic mechanical behavior and tensile strengths exceeding 3 GPa, which is unprecedented for materials that are compatible with wafer-level device fabrication processes. The ultrahigh strength is attributed to a combination of solid solution strengthening and the presence of dense nanotwins. These films also have excellent thermal and mechanical stability, high density, and electrical properties that are attractive for next-generation metal MEMS applications.
机译:基于硅的微机电系统(MEMS)传感器已在基于消费者的产品中变得无处不在,但是实现MEMS设备的互连网络将允许对组件进行远程监视和控制,这一概念通常被称为“物联网”。需要一套目前不可用的MEMS材料和特性。我们报道了用直流溅射沉积法合成金属镍-钼-钨薄膜的方法,这将导致充满纳米孪晶的完全致密的晶体学织构薄膜。这些薄膜表现出的线性弹性机械行为和超过3 GPa的拉伸强度,这是与晶圆级器件制造工艺兼容的材料所无法比拟的。超高强度归因于固溶体强化和致密纳米孪晶的结合。这些薄膜还具有出色的热和机械稳定性,高密度和电性能,对于下一代金属MEMS应用具有吸引力。

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