Topologically enhanced optical helicity density in the thermal near field of twisted bilayer van der Waals materials
Xiaohong Zhang, Chiyu Yang, Wenshan Cai, and Zhuomin M. Zhang

TL;DR
This paper explores how the optical helicity density in the thermal near field of twisted bilayer van der Waals materials is influenced by the twist angle, revealing a topological transition that affects the electromagnetic properties.
Contribution
It establishes a relationship between optical helicity density and twist angle, introducing a coherence matrix method and analyzing the topological transition in polariton dispersion.
Findings
Strong correlation between OHD and TTA observed
Polariton dispersion switches from hyperbolic to elliptical at TTA
Enhanced polariton directionality linked to topological transition
Abstract
Twisted van der Waals (vdW) bilayers can support tunable surface/hyperbolic phonon polariton (S/HPhP) depending on the interlayer twist angle. S/HPhPs can be thermally excited and significantly modify the thermal near field. A photonic topological phase transition occurs at a critical twist angle where the polariton dispersion switches from hyperbolic to elliptical. Because the twist angle governs the polariton modes, it is intrinsically linked to the optical helicity density (OHD) of the near-field thermal emission. In this work, a relationship between the OHD of near-field emission and the twist angle of bilayer twisted vdW materials is discovered and investigated. To evaluate the OHD, a 33 coherence matrix method is obtained from the fluctuation-dissipation theorem (FDT), which provides a complete description of the thermal electromagnetic field of the twisted bilayer, and a…
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Taxonomy
TopicsThermal Radiation and Cooling Technologies · Thermal properties of materials · Plasmonic and Surface Plasmon Research
