Topological phonon polariton enhanced radiative heat transfer in bichromatic nanoparticle arrays mimicking Aubry-Andr\'e-Harper model
B. X. Wang, C. Y. Zhao

TL;DR
This paper demonstrates that topological phonon polaritons in bichromatic nanoparticle chains, modeled after the Aubry-Andre9-Harper system, can significantly enhance radiative heat transfer, offering new ways to control thermal transport using topological effects.
Contribution
It introduces a novel topological phonon polariton system in 1D nanoparticle chains that mimics the AAH model, enabling enhanced and tunable radiative heat transfer.
Findings
Topological edge modes are supported in the nanoparticle chain.
Radiative heat transfer is substantially enhanced by topological gaps.
Modulation phase controls the presence of topological modes and heat transfer.
Abstract
Topological phonon polaritons (TPhPs) are promising optical modes relevant in long-range radiative heat transfer, information processing and infrared sensing, whose topological protection is expected to enable their robust existence and transport. In this work we show that TPhPs can be supported in one-dimensional (1D) bichromatic silicon carbide nanoparticle (NP) chains, and demonstrate that they can considerably enhance radiative heat transfer for an array much longer than the wavelength of radiation. By introducing incommensurate or commensurate modulations on the interparticle distances, the NP chain can be regarded as an extension of the off-diagonal Aubry-Andr\'e-Harper (AAH) model. By calculating the eigenstate spectra with respect to the modulation phase that creates a synthetic dimension, we demonstrate that under this type of modulation the chain supports nontrivial…
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Taxonomy
TopicsThermal Radiation and Cooling Technologies · Radiative Heat Transfer Studies · Advanced Thermodynamics and Statistical Mechanics
