Xu Liujun, Liu Jinrong, Jin Peng, Xu Guoqiang, Li Jiaxin, Ouyang Xiaoping, Li Ying, Qiu Cheng-Wei, Huang Jiping
Department of Physics, State Key Laboratory of Surface Physics, and Key Laboratory of Micro and Nano Photonic Structures (MOE), Fudan University, Shanghai 200438, China.
Department of Electrical and Computer Engineering, National University of Singapore, Singapore 117583, Singapore.
Natl Sci Rev. 2022 Aug 16;10(2):nwac159. doi: 10.1093/nsr/nwac159. eCollection 2023 Feb.
The curved space-time produced by black holes leads to the intriguing trapping effect. So far, metadevices have enabled analogous black holes to trap light or sound in laboratory spacetime. However, trapping heat in a conductive environment is still challenging because diffusive behaviors are directionless. Inspired by black holes, we construct graded heat-conduction metadevices to achieve thermal trapping, resorting to the imitated advection produced by graded thermal conductivities rather than the trivial solution of using insulation materials to confine thermal diffusion. We experimentally demonstrate thermal trapping for guiding hot spots to diffuse towards the center. Graded heat-conduction metadevices have advantages in energy-efficient thermal regulation because the imitated advection has a similar temperature field effect to the realistic advection that is usually driven by external energy sources. These results also provide an insight into correlating transformation thermotics with other disciplines, such as cosmology, for emerging heat control schemes.
黑洞产生的弯曲时空会导致引人入胜的捕获效应。到目前为止,超材料装置已能在实验室时空中实现类似黑洞的光或声捕获。然而,在传导环境中捕获热量仍然具有挑战性,因为扩散行为是无方向的。受黑洞启发,我们构建了梯度热传导超材料装置以实现热捕获,借助由梯度热导率产生的模拟平流,而不是采用绝缘材料来限制热扩散这种简单方法。我们通过实验证明了热捕获可引导热点向中心扩散。梯度热传导超材料装置在节能热调节方面具有优势,因为模拟平流具有与通常由外部能源驱动的实际平流相似的温度场效应。这些结果还为将变换热学与其他学科(如宇宙学)关联起来以实现新兴的热控制方案提供了见解。