论文标题

同时评估纳米晶钻石薄膜的热容量和平面导热率

Simultaneous Evaluation of Heat Capacity and In-plane Thermal Conductivity of Nanocrystalline Diamond Thin Films

论文作者

Yates, Luke, Cheng, Zhe, Bai, Tingyu, Hobart, Karl, Tadjer, Marko, Feygelson, Tatyana I., Pate, Bradford B., Goorsky, Mark, Graham, Samuel

论文摘要

随着宽带隙电子设备在尺寸降低和功率处理能力方面继续推进,散热已成为一个重大问题。为了减轻这种情况,通过直接生长在晶体管底物上,已证明沉积化学蒸气(CVD)钻石是对这些设备进行热管理的有效解决方案。功率和射频(RF)电子设备的关键方面涉及瞬态切换行为,这突出了在建模和预测设备电热响应时,了解热容量和热导率的温度依赖性的重要性。由于CVD钻石和电子设备之间界面附近的微观结构复杂,因此很难同时测量这两个特性。在这项工作中,我们使用时域热素侵占(TDTR)同时测量1 UM厚的CVD钻石膜的平面导热率和热容量,并使用泵作为有效的加热器来执行依赖温度依赖的测量。结果表明,在302至327 K的温度范围内,IN平面热导率略有不同,平均每秒钟103 w,而特定的热容量在同一范围内具有较强的温度依赖性,并且与文献中天然钻石的热容量数据相匹配。

As wide bandgap electronic devices have continued to advance in both size reduction and power handling capabilities, heat dissipation has become a significant concern. To mitigate this, chemical vapor deposited (CVD) diamond has been demonstrated as an effective solution for thermal management of these devices by directly growing onto the transistor substrate. A key aspect of power and radio frequency (RF) electronic devices involves transient switching behavior, which highlights the importance of understanding the temperature dependence of the heat capacity and thermal conductivity when modeling and predicting device electrothermal response. Due to the complicated microstructure near the interface between CVD diamond and electronics, it is difficult to measure both properties simultaneously. In this work, we use time domain thermoreflectance (TDTR) to simultaneously measure the in plane thermal conductivity and heat capacity of a 1 um thick CVD diamond film, and also use the pump as an effective heater to perform temperature dependent measurements. The results show that the in plane thermal conductivity varied slightly with an average of 103 W per meter per K over a temperature range of 302 to 327 K, while the specific heat capacity has a strong temperature dependence over the same range and matches with heat capacity data of natural diamond in literature.

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