Braun Jeffrey L, Olson David H, Gaskins John T, Hopkins Patrick E
Department of Mechanical and Aerospace Engineering, University of Virginia, Charlottesville, Virginia 22904, USA.
Rev Sci Instrum. 2019 Feb;90(2):024905. doi: 10.1063/1.5056182.
We demonstrate a steady-state thermoreflectance-based optical pump-probe technique to measure the thermal conductivity of materials using a continuous wave laser heat source. The technique works in principle by inducing a steady-state temperature rise in a material via long enough exposure to heating from a pump laser. A probe beam is then used to detect the resulting change in reflectance, which is proportional to the change in temperature at the sample surface. Increasing the power of the pump beam to induce larger temperature rises, Fourier's law is used to determine the thermal conductivity. We show that this technique is capable of measuring the thermal conductivity of a wide array of materials having thermal conductivities ranging from 1 to >2000 W m K, in excellent agreement with literature values.
我们展示了一种基于稳态热反射的光泵浦-探测技术,该技术使用连续波激光热源来测量材料的热导率。该技术的工作原理是通过长时间暴露于泵浦激光的加热,在材料中诱导出稳态温度升高。然后使用探测光束检测反射率的变化,该变化与样品表面温度的变化成正比。增加泵浦光束的功率以诱导更大的温度升高,利用傅里叶定律来确定热导率。我们表明,该技术能够测量热导率范围从1到>2000 W m K的多种材料的热导率,与文献值高度吻合。