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Exploiting NiTi shape memory alloy films in design of tunable high frequency microcantilever resonators

机译:在可调谐高频微悬臂梁谐振器设计中开发NiTi形状记忆合金膜

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摘要

Shape memory alloy (SMA) films are very attractive materials for microactuators because of their high energy density. However, all currently developed SMA actuators utilize martensitic transformation activated by periodically generated heating and cooling; therefore, they have a slow actuation speed, just a few Hz, which restricts their use in most of the nanotechnology applications such as high frequency microcantilever based physical and chemical sensors, atomic force microscopes, or RF filters. Here, we design tunable high frequency SMA microcantilevers for nanotechnology applications. They consist of a phase transforming NiTi SMA film sputtered on the common elastic substrate material; in our case, it is a single-crystal silicon. The reversible tuning of microcantilever resonant frequencies is then realized by intentionally changing the Young's modulus and the interlayer stress of the NiTi film by temperature, while the elastic substrate guarantees the high frequency actuation (up to hundreds of kHz) of the microcantilever. The experimental results qualitatively agree with predictions obtained from the dedicated model based on the continuum mechanics theory and a phase characteristic of NiTi. The present design of SMA microcantilevers expands the capability of current micro-anomechanical resonators by enabling tunability of several consecutive resonant frequencies.
机译:形状记忆合金(SMA)膜因其高能量密度而成为微致动器的极具吸引力的材料。但是,目前所有开发的SMA执行器都利用马氏体相变,并通过周期性产生的加热和冷却来激活。因此,它们的启动速度很慢,只有几个Hz,这限制了它们在大多数纳米技术应用中的使用,例如基于高频微悬臂的物理和化学传感器,原子力显微镜或RF滤波器。在这里,我们为纳米技术应用设计了可调谐高频SMA微悬臂梁。它们由溅射在普通弹性基材上的相变NiTi SMA膜组成;在我们的例子中,它是单晶硅。然后,通过有意识地通过温度改变NiTi膜的杨氏模量和层间应力,可实现对微悬臂梁谐振频率的可逆调节,而弹性基板则保证了微悬臂梁的高频致动(高达数百kHz)。实验结果在质量上与基于连续力学原理和NiTi相特征的专用模型的预测吻合。 SMA微悬臂梁的当前设计通过实现几个连续谐振频率的可调谐性,扩展了当前微/纳米机械谐振器的能力。

著录项

  • 来源
    《Applied Physics Letters》 |2017年第21期|213105.1-213105.5|共5页
  • 作者单位

    School of Sciences, Harbin Institute of Technology, Shenzhen School, Shenzhen, China,Institute of Physics, Czech Academy of Sciences, Prague, Czech Republic;

    Institute of Physics, Czech Academy of Sciences, Prague, Czech Republic;

    Institute of Physics, Czech Academy of Sciences, Prague, Czech Republic;

    Institute of Thermomechanics, Czech Academy of Sciences, Prague, Czech Republic;

    Institute of Physics, Czech Academy of Sciences, Prague, Czech Republic;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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