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MEMS Based High Sensitivity Calorimetry

机译:基于MEMS的高灵敏度量热法

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摘要

The fundamental study of phase transformations continues to be a key for successful implementation of metals and alloys in micro- and nano-scale structures in integrated circuitry and magnetic recording devices and systems. The thermodynamic and thermokinetic properties of extremely thin layers can be altered due to the relative effect of boundaries and interfaces on the volume of the material. Calorimetry at the nano-scale requires measurement sensitivity on the order of 1 nJ or better, which requires improved thermal design, development of thermal modeling, and development of experimental measurement techniques. In this report, the specific heat of 144 nm thick CoFe layer is measured, using frequency-domain Joule heating and thermometry (3ω-technique), on Cu/SiO_2 and Cu/SiO_2/CoFe suspended bridges. Analyses of the heat transfer in suspended structures are performed to establish guidelines for design and fabrication of small-scale differential scanning calorimeters.
机译:相变的基础研究仍然是成功地在集成电路,磁记录设备和系统的微米和纳米级结构中实现金属和合金的关键。由于边界和界面对材料体积的相对影响,极薄层的热力学和热动力学性质可以改变。纳米量热法要求1 nJ或更高的测量灵敏度,这需要改进热设计,开发热模型以及开发实验测量技术。在此报告中,使用频域焦耳加热和测温法(3ω技术)在Cu / SiO_2和Cu / SiO_2 / CoFe悬浮桥上测量了144 nm厚CoFe层的比热。进行悬浮结构中的热传递分析以建立小型差示扫描量热仪的设计和制造指南。

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