Colossal Near‐Field Radiative Heat Transfer Mediated by Coupled Polaritons with an Ultrahigh Dynamic Range

Author:

Zhang Wenbin1,Wang Boxiang12,Jin Shenghao1,Zhou Jiahao1,Gong Zhen1,Zhao Changying1ORCID

Affiliation:

1. Institute of Engineering Thermophysics School of Mechanical Engineering MOE Key Laboratory for Power Machinery and Engineering Shanghai Jiao Tong University Shanghai 200240 China

2. 2020 X‐Lab, State Key Laboratory of Transducer Technology Shanghai Institute of Microsystem and Information Technology Chinese Academy of Sciences Shanghai 200050 China

Abstract

AbstractNear‐field radiative heat transfer (NFRHT) can exceed the blackbody limit by several orders of magnitude owing to the tunneling evanescent waves. Exploiting this near‐field enhancement holds significant potential for emerging technologies. It has been suggested that coupled polaritons can give rise to orders of magnitude enhancement of NFRHT. However, a thorough experimental verification of this phenomenon is still missing. Here this work experimentally shows that NFRHT mediated by coupled polaritons in millimeter‐size graphene/SiC/SiO2 composite devices in planar plate configuration can realize about 302.8 ±  35.2‐fold enhancement with respect to the blackbody limit at a gap distance of 87  ±  0.8 nm. The radiative thermal conductance and effective gap heat transfer coefficient can reach unprecedented values of 0.136 WK−1 and 5440 Wm−2K−1. Additionally, a scattering‐type scanning near‐field optical measurement, in conjunction with full‐wave numerical simulations, provides further evidence for the coupled polaritonic characteristics of the devices. Notably, this work experimentally demonstrates dynamic regulation of NFRHT can be achieved by modulating the bias voltage, leading to an ultrahigh dynamic range of ≈4.115. This work ambiguously elucidates the important role of coupled polaritons in NFRHT, paving the way for the manipulation of nanoscale heat transport, energy conversion, and thermal computing via the strong coupling effect.

Funder

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

China Postdoctoral Science Foundation

Publisher

Wiley

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