Physical and chemical descriptors for predicting interfacial thermal resistance

Yen Ju Wu, Tianzhuo Zhan, Zhufeng Hou, Lei Fang, Yibin Xu*

*この研究の対応する著者

研究成果: Article査読

9 被引用数 (Scopus)

抄録

Heat transfer at interfaces plays a critical role in material design and device performance. Higher interfacial thermal resistances (ITRs) affect the device efficiency and increase the energy consumption. Conversely, higher ITRs can enhance the figure of merit of thermoelectric materials by achieving ultra-low thermal conductivity via nanostructuring. This study proposes a dataset of descriptors for predicting the ITRs. The dataset includes two parts: one part consists of ITRs data collected from 87 experimental papers and the other part consists of the descriptors of 289 materials, which can construct over 80,000 pair-material systems for ITRs prediction. The former part is composed of over 1300 data points of metal/nonmetal, nonmetal/nonmetal, and metal/metal interfaces. The latter part consists of physical and chemical properties that are highly correlated to the ITRs. The synthesis method of the materials and the thermal measurement technique are also recorded in the dataset for further analyses. These datasets can be applied not only to ITRs predictions but also to thermal-property predictions or heat transfer on various material systems.

本文言語English
論文番号36
ジャーナルScientific Data
7
1
DOI
出版ステータスPublished - 2020 12月 1

ASJC Scopus subject areas

  • 統計学および確率
  • 情報システム
  • 教育
  • コンピュータ サイエンスの応用
  • 統計学、確率および不確実性
  • 図書館情報学

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