Polariton topological transition effects on radiative heat transfer

Cheng-Long Zhou, Xiao-Hu Wu, Yong Zhang, Hong-Liang Yi, and Mauro Antezza
Phys. Rev. B 103, 155404 – Published 6 April 2021

Abstract

Twisted two-dimensional bilayer anisotropy materials exhibit many exotic physical phenomena. Manipulating the “twist angle” between the two layers enables the hybridization phenomenon of polaritons, resulting in fine control of the dispersion engineering of the polaritons in these structures. Here, combined with the hybridization phenomenon of anisotropy polaritons, we study theoretically the near-field radiative heat transfer (NFRHT) between two twisted hyperbolic systems. These two twisted hyperbolic systems are mirror images of each other. Each twisted hyperbolic system is composed of two graphene gratings, where there is an angle φ between these two graphene gratings. By analyzing the photonic transmission coefficient as well as the plasmon dispersion relation of the twisted hyperbolic system, we prove the enhancement effect of the topological transitions of the surface state at a special angle [from open (hyperbolic) to closed (elliptical) contours] on radiative heat transfer. Meanwhile the role of the thickness of dielectric spacer and vacuum gap on the manipulating the topological transitions of the surface state and the NFRHT are also discussed. We predict the hysteresis effect of topological transitions at a larger vacuum gap, and demonstrate that as the thickness of the dielectric spacer increases, the transition from the enhancement effect of heat transfer caused by the twisted hyperbolic system to a suppression.

  • Figure
  • Figure
  • Figure
  • Figure
  • Figure
  • Figure
  • Figure
6 More
  • Received 26 October 2020
  • Revised 25 February 2021
  • Accepted 19 March 2021

DOI:https://doi.org/10.1103/PhysRevB.103.155404

©2021 American Physical Society

Physics Subject Headings (PhySH)

Plasma Physics

Authors & Affiliations

Cheng-Long Zhou1,2, Xiao-Hu Wu3, Yong Zhang1,2, Hong-Liang Yi1,2,*, and Mauro Antezza4,5,†

  • 1School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, People's Republic of China
  • 2Key Laboratory of Aerospace Thermophysics, Ministry of Industry and Information Technology, Harbin 150001, People's Republic of China
  • 3Shandong Institute of Advanced Technology, Jinan 250100, Shandong, China
  • 4Laboratoire Charles Coulomb (L2C), UMR 5221 CNRS-Université de Montpellier, F-34095 Montpellier, France
  • 5Institut Universitaire de France, 1 rue Descartes, F-75231 Paris, France

  • *Corresponding author: yihongliang@hit.edu.cn
  • Corresponding author: mauro.antezza@umontpellier.fr

Article Text (Subscription Required)

Click to Expand

References (Subscription Required)

Click to Expand
Issue

Vol. 103, Iss. 15 — 15 April 2021

Reuse & Permissions
Access Options
Author publication services for translation and copyediting assistance advertisement

Authorization Required


×
×

Images

×

Sign up to receive regular email alerts from Physical Review B

Log In

Cancel
×

Search


Article Lookup

Paste a citation or DOI

Enter a citation
×