论文标题

弯曲加热器几何形状

Three-Omega Thermal-Conductivity Measurements with Curved Heater Geometries

论文作者

Jaffe, Gabriel R., Smith, Keenan J., Brar, Victor W., Lagally, Max G., Eriksson, Mark A.

论文摘要

这是一种三强方法,是一种强大的技术,用于测量纳米厚膜的热导率和它们之间的接口,历史上一直使用直导线导电,以既充当加热器和温度计。在研究随机制备的样品(例如二维材料和纳米膜)时,残留物和多余的材料可能使很难在样品表面上安装所需的毫米长的直线。目前尚无关于如何在障碍物周围转移三欧洲加热器电线的可用标准。在这封信中,我们通过使用SIO $ _2 $/SI样本对曲线和直加热器几何形状进行多种频率进行三范围频率的三层实验来量化电线曲率的效果。当加热线弯曲时,我们发现测得的Si底物热导率仅变化0.2%。同样,我们发现电线曲率对确定$ \ sim $ 65 nm Sio $ _2 $层的热阻力也没有显着影响,即使对于此处考虑的最锐利的角,也为此,最大的测量比率的热渗透率比施加的热波的热渗透深度与供热线的曲率的半径为4.3。该结果通过为热穿透深度与曲率线半径的最大比率设置下限,为三欧洲实验提供了有用的设计标准。

The three-omega method, a powerful technique to measure the thermal conductivity of nanometer-thick films and the interfaces between them, has historically employed straight conductive wires to act as both heaters and thermometers. When investigating stochastically prepared samples such as two-dimensional materials and nanomembranes, residue and excess material can make it difficult to fit the required millimeter-long straight wire on the sample surface. There are currently no available criteria for how diverting three-omega heater wires around obstacles affects the validity of the thermal measurement. In this Letter, we quantify the effect of wire curvature by performing three-omega experiments with a wide range of frequencies using both curved and straight heater geometries on SiO$_2$/Si samples. When the heating wire is curved, we find that the measured Si substrate thermal conductivity changes by only 0.2%. Similarly, we find that wire curvature has no significant effect on the determination of the thermal resistance of a $\sim$65 nm SiO$_2$ layer, even for the sharpest corners considered here, for which the largest measured ratio of the thermal penetration depth of the applied thermal wave to radius of curvature of the heating wire is 4.3. This result provides useful design criteria for three-omega experiments by setting a lower bound for the maximum ratio of thermal penetration depth to wire radius of curvature.

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