材料科学
钌
电导
温度系数
薄膜
热阻
点(几何)
热的
复合材料
热力学
凝聚态物理
纳米技术
化学
物理
数学
几何学
生物化学
催化作用
作者
Braulio Beltrán-Pitarch,Benny Guralnik,Kasper A. Borup,Christoph Adelmann,Ole Hansen,Nini Pryds,Dirch Hjorth Petersen
标识
DOI:10.1088/1361-6501/ad366b
摘要
Abstract Accurate characterization of the temperature coefficient of resistance ( α TCR ) of electrically conductive materials is pertinent for reducing self-heating in electronic devices. In-situ non-destructive measurements of α TCR using the micro four-point probe (M4PP) technique have previously been demonstrated on platinum (Pt) thin films deposited on fused silica, assuming the thermal conductivity of the substrate as known. In this study, we expand the M4PP method to obtain the α TCR on industrially relevant stacks, comprising ruthenium (Ru) thin films (3.3 nm and 5.2 nm thick) deposited on bulk silicon (Si), separated by a 90 nm SiO 2 spacer. The new M4PP methodology allows simultaneous determination of both α TCR and the total thermal boundary conductance ( G TBC ) between the metallic film and its substrate. We measured the α TCR and the G TBC to be 542 ± 18 ppm K −1 and 15.6 ± 1.3 MW m −2 K −1 for 3.3 nm Ru, and 982 ± 46 ppm K −1 and 19.3 ± 2.3 MW m −2 K −1 for 5.2 nm Ru. This is in good agreement with independent measurements of α TCR . Our methodology demonstrates the potential of M4PP to characterize thermal properties of metallic thin films used in semiconductor technology.
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