首页> 外文期刊>Journal of intelligent material systems and structures >Toward mechano-spintronics: Nanostructured magnetic multilayers for the realization of microcantilever sensors featuring wireless actuation for liquid environments
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Toward mechano-spintronics: Nanostructured magnetic multilayers for the realization of microcantilever sensors featuring wireless actuation for liquid environments

机译:迈向机械自旋电子学:纳米结构的磁性多层体,用于实现具有用于液体环境的无线驱动的微悬臂梁传感器

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摘要

Silicon microcantilevers are realized and tested using different ferromagnetic thin films as active actuators. The exploited design is optimized for operating the sensor in a liquid environment. Different magnetic materials are used as actuator elements: a soft layer of face-centered cubic Co, a hard layer of Co_(80)Cr_(20) (subscript: atomic composition in percentage) and a (Co~5Cu~(10))5 multilayer (superscript: thickness; subscript: number of repetitions). The thin film magnetizations are characterized both in the film plane and out of it. We characterize the devices in air and in water comparing piezoelectric and magnetic actuation, confirming that nanostructured magnetic multilayers represent a new and promising route to optimize the actuation of magnetic microcantilevers. Complete sets of dynamical measures, consisting of stability plots, are discussed. Finite element simulations performed with a commercial code and inherent to a static analysis of different magnetic microcantilevers are commented, casting more light on the importance of having a nanostructured actuator for a high-efficiency energy transfer. This opens the route to new challenging devices, where the spin arrangement at the nanoscale is used to induce either mechanical deformations or movements by effect of an electromagnetic field.
机译:使用不同的铁磁薄膜作为有源致动器来实现和测试硅微悬臂梁。开发的设计经过优化,可在液体环境中操作传感器。不同的磁性材料用作致动器元件:面心立方Co的软层,Co_(80)Cr_(20)的硬层(下标:原子成分百分比)和(Co〜5Cu〜(10)) 5多层(上标:厚度;下标:重复次数)。薄膜磁化强度既可以在薄膜平面内也可以在薄膜平面外表征。我们通过比较压电和磁性驱动来表征空气和水中的设备,从而确认纳米结构磁性多层代表了一种优化磁性微悬臂梁驱动的新途径。讨论了由稳定度图组成的完整的动力学度量。评论了用商业代码执行的有限元模拟,并且对不同磁性微悬臂梁进行了静态分析所固有的有限元模拟,为使用纳米结构致动器进行高效能量传递的重要性投下了更多的光。这为新的挑战性设备开辟了道路,在纳米设备中,纳米级的自旋排列可用于通过电磁场的作用来诱导机械变形或运动。

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    Department of Applied Science and Technology, Politecnico di Torino, Torino, Italy ,Istituto Italiano di Tecnologia, Center for Space Human Robotics, Corso Trento 21, IT-10129 Torino, Italy;

    Department of Applied Science and Technology, Politecnico di Torino, Torino, Italy;

    Department of Applied Science and Technology, Politecnico di Torino, Torino, Italy ,Istituto Italiano di Tecnologia, Center for Space Human Robotics, Torino, Italy;

    Department of Applied Science and Technology, Politecnico di Torino, Torino, Italy;

    Electromagnetism Division, INRiM, Torino, Italy;

    Istituto Italiano di Tecnologia, Center for Space Human Robotics, Torino, Italy;

    Department of Applied Science and Technology, Politecnico di Torino, Torino, Italy;

    Department of Applied Science and Technology, Politecnico di Torino, Torino, Italy;

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  • 正文语种 eng
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  • 关键词

    Actuator; ferromagnetic thin films; nanomagnetism;

    机译:执行器铁磁薄膜纳米磁性;

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