首页> 外文期刊>International journal of applied mechanics >Construction of Core-Shell Nanowire Arrays in a Cu-Cu2O Film Electrode for High Efficiency in Heat Dissipation
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Construction of Core-Shell Nanowire Arrays in a Cu-Cu2O Film Electrode for High Efficiency in Heat Dissipation

机译:Cu-Cu2O薄膜电极中芯壳纳米线阵列的施工高耗材效率

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摘要

Thermal engineering dramatically impacts the efficiency of microelectronics, but the corresponding technology lags far behind the need. For energy-efficient thermal management, a Cu-Cu2O film with highly ordered core-shell nanowire arrays and a good self-protection property was successfully fabricated using the magnetron sputtering method. The dense arrangement of nanowires in the films enhances the electronic transport property (220 m Omega sq(-1)), while the modified stable Cu2O layer maintained its perfect heat dissipation property, along with long-term thermal stability. The core-shell and nanogaps structure imparted an anisotropic thermal conductivity, where the out-plane electronic thermal conductivity (321 +/- 16 W m(-1) K-1) was 33.6 times higher than the in-plane value. To study the role of anisotropic properties in heat dissipation, a boiling experiment and thermal simulation were undertaken. The Cu-Cu2O core-shell electrode was beneficial to elevate the heat transfer coefficient, which would cause a fast directional transport and reduction of interfacial superheating. We demonstrated that an advancement of microelectronics could be achieved by integrating Cu electrodes with an ordered architecture.
机译:热工程显着影响微电子的效率,但相应的技术远远落后于需求。对于节能热管理,使用磁控溅射法成功制造具有高度有序的芯壳纳米线阵列的Cu-Cu2O膜和良好的自我保护性能。薄膜中纳米线的致密布置增强了电子传输性质(220 mωSq(-1)),而改性的稳定Cu2O层保持其完美的散热性,以及长期热稳定性。核心壳和纳米重杆结构赋予各向异性导热率,其中外平面电子导热率(321 +/- 16Wm(-1)K-1)比平面内值高33.6倍。为研究各向异性特性在散热中的作用,进行了沸腾实验和热模拟。 Cu-Cu2O核 - 壳电极有利于提高传热系数,这将导致快速定向传输和界面过热的减少。我们证明,可以通过将Cu电极与有序的架构集成来实现微电子的进步。

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