4.6 Article

Near-Perfect Photon Tunneling by Hybridizing Graphene Plasmons and Hyperbolic Modes

Journal

ACS PHOTONICS
Volume 1, Issue 9, Pages 785-789

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ph5001633

Keywords

graphene; hyperbolic metamaterials; near field; radiative heat transfer

Funding

  1. U.S. Department of Energy, Office of Science, Basic Energy Sciences [DE-FG02-06ER46343]
  2. National Science Foundation [CBET-1235975]
  3. Directorate For Engineering
  4. Div Of Chem, Bioeng, Env, & Transp Sys [1235975] Funding Source: National Science Foundation

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Excitation of surface plasmon polaritons helps to increase the near-field heat flux by orders of magnitude beyond the limit governed by Stefan-Boltzmann law. However, the photon tunneling probability is rather low, except for modes satisfying the resonance condition of surface plasmon polaritons. Broadband hyperbolic metamaterials can broaden the frequency region for the enhancement of near-field heat transfer, but can hardly maintain a high tunneling probability for large wavevectors since no resonances are excited to overcome the inherent exponential decay. In this letter, perfect photon tunneling with near-unity probability across broad frequency and k-space region is demonstrated based on the hybridization of graphene plasmons and hyperbolic modes. As a result, the near-field heat transfer coefficient between doped-silicon-nanowire hyperbolic metamaterials can be further improved several fold when covered by a graphene sheet, approaching to a theoretical limit.

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