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Rapid Thermal Characterization of Materials with Ultra-High Resolution of Droplet Size Specimens using the Three-Omega Method

机译:使用三Ω方法对具有超高分辨率的液滴尺寸样品的材料进行快速热表征

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Measuring the thermal conductivity can be challenging, especially for liquids or pastes of small volumes. We developed a measurement chip which is suitable for a fast, accurate and convenient determination of the thermal conductivity and diffusivity of droplet size specimens. The measurement method is based on an extension of the 3-omega measurement technique, the so-called bidirectional 3-omega method. A characterization chip with through-glass vias has been developed, allowing for convenient sample positioning and insertion of the chip into the measurement setup. A very thin passivation layer fabricated by atomic layer deposition enables measuring electrically conductive samples while maintaining good thermal transport through the layer. Sample volumes down to 0.02 mm3are sufficient for accurate measurements. The measurements can be performed within few minutes. Measurements of the thermal conductivity of different thermal interface materials, like pastes and pads, and several liquids and polymers were performed and compared with results obtained using a standard steady-state technique and literature values. The results obtained with both methods agree well within measurement uncertainty.
机译:测量热导率可能具有挑战性,尤其是对于小体积的液体或糊剂而言。我们开发了一种测量芯片,适用于快速,准确和方便地确定液滴尺寸样品的导热系数和扩散系数。测量方法是基于3-Ω测量技术的扩展,即所谓的双向3-Ω方法。已经开发出具有玻璃通孔的表征芯片,可以方便地进行样品定位并将芯片插入测量设置。通过原子层沉积制造的非常薄的钝化层能够测量导电样品,同时保持良好的热传递穿过该层的能力。样品体积低至0.02 mm 3 足以进行准确的测量。测量可以在几分钟之内完成。进行了不同导热界面材料(如糊剂和垫)以及几种液体和聚合物的导热系数的测量,并将其与使用标准稳态技术和文献值获得的结果进行了比较。两种方法获得的结果在测量不确定性范围内都很好地吻合。

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