Topological near-field heat flow in a honeycomb lattice
arXiv:2112.10476 · doi:10.1016/j.ijheatmasstransfer.2022.122796
Abstract
We study the near-field thermal radiation of topologically protected edge modes in a honeycomb lattice of plasmonic InSb nanoparticles. We show that the heat transport by near-field interaction is in the topological non-trivial phase dominated by the heat flux channel provided by the edge modes rather than the bulk modes. This heat flux channel allows for an enhanced heat transport along the edges of the honeycomb lattice. In particular for materials with relatively small dissipation we find a 30 to 50 times larger heat flux along the lattice edges than in the bulk.
References in corpus (14)
- Topological Photonics
- Photonic Analogue of Two-dimensional Topological Insulators and Helical One-Way Edge Transport in Bi-Anisotropic Metamaterials
- Scheme to Achieve Silicon Topological Photonics
- Electric Multipole Moments, Topological Multipole Moment Pumping, and Chiral Hinge States in Crystalline Insulators
- Bulk Topological Invariants in Noninteracting Point Group Symmetric Insulators
- Dirac-like plasmons in honeycomb lattices of metallic nanoparticles
- Topological collective plasmons in bipartite chains of metallic nanoparticles
- Radiative thermal diode driven by non-reciprocal surface waves
- Heat Transport Through Plasmonic Interactions in Closely Spaced Metallic Nanoparticles Chains
- Graphene-based thermal repeater
- Topological Angular Momentum and Radiative Heat Transport in Closed Orbits
- Radiative thermal switch exploiting hyperbolic surface phonon polaritons
- Smart thermal management with near-field thermal radiation
- Thermal near-field energy density and LDOS in topological 1D SSH chains and 2D SSH lattices of plasmonic nanoparticles
Cited by in corpus (4)
- Topological thermal transport
- Thermal radiation and near-field thermal imaging of a plasmonic Su-Schrieffer-Heeger chain
- Topological Materials for Near-Field Radiative Heat Transfer
- Topological phonon polariton enhanced radiative heat transfer in bichromatic nanoparticle arrays mimicking Aubry-André-Harper model