Zhou Cheng-Long, Zhang Yong, Yi Hong-Liang
School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, P. R. China.
Key Laboratory of Aerospace Thermophysics, Ministry of Industry and Information Technology, Harbin 150001, P. R. China.
Langmuir. 2022 Jun 28;38(25):7689-7698. doi: 10.1021/acs.langmuir.2c00467. Epub 2022 Jun 14.
Owing to a high electromagnetic confinement and a strong photonic density of states, hyperbolic surface plasmon polaritons (HSPPs) provide a fascinating promise for applications in thermal photonics. In this work, we theoretically predict a possibility for the improvement of the near-field radiative heat transfer on the basis of tailoring the electromagnetic state of hyperbolic metasurfaces by the uniaxial hyperbolic substrate. By using the photonic tunneling coefficient and the polaritons dispersion, we present a comprehensive study of the hybrid effect of the hyperbolic substrate on HSPPs. We find that due to the hybrid effect of the hyperbolic substrate, the anisotropy surface state of hyperbolic metasurfaces would undergo significant deformations and even topological transition. Moreover, we systematically exhibit the evolution of such hybrid hyperbolic mode with different thicknesses of the hyperbolic substrate and analyze the thickness effect on radiative properties of the hybrid system. It is shown that the resulting heat transfer with the assistance of the hybrid hyperbolic mode by optimizing the substrate parameters is many times stronger than that of monolayer hyperbolic metasurface at the same vacuum gap. Taken together, our results provide a platform to tailor 2D hyperbolic plasmons as a potential strategy toward passive or active control of the near-field heat transfer, and the hybrid hyperbolic mode presented here may facilitate the system design for near-field energy harvesting, thermal imaging, and radiative cooling applications.
由于具有高电磁限制和强光子态密度,双曲线表面等离激元极化激元(HSPPs)为热光子学应用提供了诱人的前景。在这项工作中,我们从理论上预测了一种可能性,即通过单轴双曲线衬底来调整双曲线超表面的电磁状态,从而改善近场辐射热传递。通过使用光子隧穿系数和极化激元色散,我们对双曲线衬底对HSPPs的混合效应进行了全面研究。我们发现,由于双曲线衬底的混合效应,双曲线超表面的各向异性表面态会发生显著变形,甚至拓扑转变。此外,我们系统地展示了这种混合双曲线模式随双曲线衬底不同厚度的演变,并分析了厚度对混合系统辐射特性的影响。结果表明,通过优化衬底参数,借助混合双曲线模式产生的热传递比相同真空间隙下的单层双曲线超表面要强许多倍。综上所述,我们的结果提供了一个平台来定制二维双曲线等离子体,作为一种对近场热传递进行被动或主动控制的潜在策略,并且这里提出的混合双曲线模式可能有助于近场能量收集、热成像和辐射冷却应用的系统设计。