Hexagonal boron nitride exhibits type-II hyperbolic dispersion between about 6.17 and 7.56 eV, driven by anisotropic exciton resonances, as measured by imaging spectroscopic ellipsometry down to 190 nm and supported by reflectance measurements.
High-Temperature-Resilient Hyperbolicity in a Mixed-Dimensional Superlattice
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abstract
Hyperbolic superlattices are used for sub-wavelength focusing, cloaking, and optical thermal management. Typically, these superlattices are constructed of layers of noble metals and insulators. Despite these systems displaying excellent optical performance, the poor thermal stability of noble metals prevents their application in high-temperature environments. Instead, CMOS-compatible transition-metal nitrides are often substituted for noble metals in plasmonic systems since they have high thermal stability at the expense of optical properties. Here, we fabricate hyperbolic titanium nitride (TiN)/hexagonal boron nitride (hBN) superlattices with 3D-2D interfaces. The mixed-dimensional nature of the interfaces prevents atoms from diffusing across the interface at high temperatures. The hyperbolicity of the superlattice is found to be unaffected by annealing at high temperature (800 oC for 10 hrs), and TiN/hBN is found to have a larger hyperbolic figure of merit than similar superlattices.
fields
physics.optics 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
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Natural Hyperbolicity of Hexagonal Boron Nitride in the Deep Ultraviolet
Hexagonal boron nitride exhibits type-II hyperbolic dispersion between about 6.17 and 7.56 eV, driven by anisotropic exciton resonances, as measured by imaging spectroscopic ellipsometry down to 190 nm and supported by reflectance measurements.