论文标题

通过模仿负导热率,用于远程加热/冷却的主动热元面

Active thermal metasurfaces for remote heating/cooling by mimicking negative thermal conductivity

论文作者

Liu, Yichao, Chao, Kun, Sun, Fei, Chen, Shaojie, Dai, Hongtao, Chen, Hanchuan

论文摘要

可以通过长焦点热透镜来获得远程温度控制,该镜头可以将热通量聚焦到远离镜头后表面的位置,并在背景材料中创建虚拟热源/水槽,可以通过更改热透镜的参数来远程控制温度场分布。但是,由于缺乏负热电导率,现有的热镜片的焦距极短,不能用于远程控制虚拟热源/接收器周围的温度场。 In this study, we theoretically propose a general approach to equivalently realize negative thermal conductivity by elaborately distributed active thermal metasurface (ATMS), then use the proposed ATMS to implement a novel thermal lens with long focal length designed by transformation thermodynamics, and experimentally verify the performance of the designed long-focus thermal lens with measured focal length f=19.8mm for remote heating/cooling.所提出的方法扩大了热导率的范围,并开辟了新的方法,以实现前所未有的热导热效应,例如“热表面等离子体偏振子”,热超级式超级节,热隧道效应和热隐形网关。

Remote temperature control can be obtained by a long-focus thermal lens that can focus heat fluxes into a spot far away from the back surface of the lens and create a virtual thermal source/sink in the background material, around which the temperature field distribution can be remotely controlled by changing the parameters of the thermal lens. However, due to the lack of negative thermal conductivity, the existing thermal lenses have extremely short focal lengths and cannot be used to remotely control the temperature field around the virtual thermal source/sink. In this study, we theoretically propose a general approach to equivalently realize negative thermal conductivity by elaborately distributed active thermal metasurface (ATMS), then use the proposed ATMS to implement a novel thermal lens with long focal length designed by transformation thermodynamics, and experimentally verify the performance of the designed long-focus thermal lens with measured focal length f=19.8mm for remote heating/cooling. The proposed method expands the scope of the thermal conductivity and open up new ways to realize unprecedented thermal effects with effective negative thermal conductivity, such as "thermal surface plasmon polaritons", thermal superlens, thermal tunneling effect, and thermal invisible gateway.

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