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Near-field heat transfer between graphene/hBN multilayers
- Source :
- PIERS: Progress In Electromagnetics Research Symposium, PIERS: Progress In Electromagnetics Research Symposium, PIERS Academy, Aug 2018, Toyama, Japan, Physical Review B: Condensed Matter and Materials Physics (1998-2015), Physical Review B: Condensed Matter and Materials Physics (1998-2015), American Physical Society, 2017, 95, pp.245437. ⟨10.1103/PhysRevB.95.245437⟩
- Publication Year :
- 2018
- Publisher :
- HAL CCSD, 2018.
-
Abstract
- We study the radiative heat transfer between multilayer structures made by a periodic repetition of a graphene sheet and a hexagonal boron nitride (hBN) slab. Surface plasmons in a monolayer graphene can couple with a hyperbolic phonon polaritons in a single hBN film to form hybrid polaritons that can assist photon tunneling. For periodic multilayer graphene/hBN structures, the stacked metallic/dielectric array can give rise to a further effective hyperbolic behavior, in addition to the intrinsic natural hyperbolic behavior of hBN. The effective hyperbolicity can enable more hyperbolic polaritons that enhance the photon tunneling and hence the near-field heat transfer. However, the hybrid polaritons on the surface, i.e. surface plasmon-phonon polaritons, dominate the near-field heat transfer between multilayer structures when the topmost layer is graphene. The effective hyperbolic regions can be well predicted by the effective medium theory (EMT), thought EMT fails to capture the hybrid surface polaritons and results in a heat transfer rate much lower compared to the exact calculation. The chemical potential of the graphene sheets can be tuned through electrical gating and results in an additional modulation of the heat transfer. We found that the near-field heat transfer between multilayer structure does not increase monotonously with the number of layer in the stack, which provides a way to control the heat transfer rate by the number of graphene layers in the multilayer structure. The results may benefit the applications of near-field energy harvesting and radiative cooling based on hybrid polaritons in two-dimensional materials.<br />Comment: 10 pages, 11 figures
- Subjects :
- Materials science
Radiative cooling
[PHYS.COND.GAS]Physics [physics]/Condensed Matter [cond-mat]/Quantum Gases [cond-mat.quant-gas]
Phonon
[PHYS.MPHY]Physics [physics]/Mathematical Physics [math-ph]
FOS: Physical sciences
Physics::Optics
02 engineering and technology
Dielectric
01 natural sciences
7. Clean energy
law.invention
[PHYS.QPHY]Physics [physics]/Quantum Physics [quant-ph]
law
Radiative heat transfer
0103 physical sciences
Polariton
010306 general physics
[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics]
Condensed matter physics
[PHYS.PHYS.PHYS-ATOM-PH]Physics [physics]/Physics [physics]/Atomic Physics [physics.atom-ph]
Graphene
Condensed Matter::Other
Surface plasmon
[PHYS.PHYS.PHYS-ATM-PH]Physics [physics]/Physics [physics]/Atomic and Molecular Clusters [physics.atm-clus]
graphene
021001 nanoscience & nanotechnology
hBN
Near-field
Thermal radiation
Heat transfer
0210 nano-technology
Physics - Optics
Optics (physics.optics)
Subjects
Details
- Language :
- English
- ISSN :
- 10980121 and 1550235X
- Database :
- OpenAIRE
- Journal :
- PIERS: Progress In Electromagnetics Research Symposium, PIERS: Progress In Electromagnetics Research Symposium, PIERS Academy, Aug 2018, Toyama, Japan, Physical Review B: Condensed Matter and Materials Physics (1998-2015), Physical Review B: Condensed Matter and Materials Physics (1998-2015), American Physical Society, 2017, 95, pp.245437. ⟨10.1103/PhysRevB.95.245437⟩
- Accession number :
- edsair.doi.dedup.....7e77b70d03f601f969f685345c563089
- Full Text :
- https://doi.org/10.1103/PhysRevB.95.245437⟩