A new spatial-scan thermoreflectance method to measure a broad range of anisotropic in-plane thermal conductivity
Puqing Jiang, Dihui Wang, Zeyu Xiang, Ronggui Yang, and Heng Ban

TL;DR
This paper introduces a novel spatial-scan thermoreflectance method capable of accurately measuring a broad range of in-plane thermal conductivities, including low and anisotropic values, for small-scale samples.
Contribution
The work presents a new measurement scheme that extends the measurable in-plane thermal conductivity range down to 1 W/(m K) and enables tensor measurements for anisotropic materials.
Findings
Measured k_in of reference samples matches literature within 5% uncertainty.
Successfully measured in-plane thermal conductivity tensor of x-cut quartz.
Extended measurement capability to low k_in values and anisotropic materials.
Abstract
In-plane thermal conductivities of small-scale samples are hard to measure, especially for the lowly conductive ones and those lacking in-plane symmetry (i.e., transversely anisotropic materials). State-of-the-art pump-probe techniques including both the time-domain and the frequency-domain thermoreflectance (TDTR and FDTR) are advantageous in measuring the thermal conductivity of small-scale samples, and various advanced TDTR and FDTR techniques have been developed to measure transversely anisotropic materials. However, the measurable in-plane thermal conductivity (k_in) is usually limited to be >10 W/(m K). In this work, a new spatial-scan thermoreflectance (SSTR) method has been developed to measure a broad range of k_in of millimeter-scale small samples, including those lacking in-plane symmetry, extending the current limit of the measurable k_in to as low as 1 W/(m K). This SSTR…
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Taxonomy
TopicsThermal properties of materials · Thermography and Photoacoustic Techniques · Geothermal Energy Systems and Applications
