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Dynamic Modulation of Radiative Heat Transfer beyond the Blackbody Limit

机译:辐射热传递的动态调制超出黑体极限

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摘要

Dynamic control of electromagnetic heat transfer without changing mechanical configuration opens possibilities in intelligent thermal management in nanoscale systems. We confirmed by experiment that the radiative heat transfer is dynamically modulated beyond the blackbody limit. The near field electromagnetic heat exchange mediated by phonon-polariton is controlled by the metal insulator transition of tungsten-doped vanadium dioxide. The functionalized heat flux is transferred over an area of 1.6 cm(2) across a 370 nm gap, which is maintained by the microfabricated spacers and applied pressure. The uniformity of the gap is validated by optical interferometry, and the measured heat transfer is well modeled as the sum of the radiative and the parasitic conductive components. The presented methodology to form a nanometric gap with functional heat flux paves the way to the smart thermal management in various scenes ranging from highly integrated systems to macroscopic apparatus.
机译:电磁传热的动态控制而不改变机械配置在纳米级系统中打开智能热管理中的可能性。 我们通过实验证实,辐射传热被动态地调制超出黑体极限。 由旋光 - 极性碳介导的近场电磁热交换由钨掺杂二氧化钒的金属绝缘体转变控制。 官能化的热通量在370nm间隙上在1.6cm(2)面积上传递,该间隙由微制订间隔物保持并施加压力。 通过光学干涉测量验证间隙的均匀性,并且测量的传热是良好的建模作为辐射和寄生导电部件的总和。 通过功能热通量形成纳米间隙的呈现方法铺设了从高度集成系统到宏观设备的各种场景中的智能热管理的方式。

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