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Quantization of mode shifts in nanocavities integrated with atomically thin sheets

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arxiv 2201.06684 v1 pith:F245XPJY submitted 2022-01-18 physics.optics cond-mat.mtrl-sci

Quantization of mode shifts in nanocavities integrated with atomically thin sheets

classification physics.optics cond-mat.mtrl-sci
keywords materialstwo-dimensionalflakesintegratedphotonicshiftsatomicallycavity
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The unique optical properties of two-dimensional layered materials are attractive for achieving increased functionality in integrated photonics. Owing to the van der Waals nature, these materials are ideal for integrating with nanoscale photonic structures. Here we report on carefully designed air-mode silicon photonic crystal nanobeam cavities for efficient control through two-dimensional materials. By systematically investigating various types and thickness of two-dimensional materials, we are able to show that enhanced responsivity allows for giant shifts of the resonant wavelength. With atomically precise thickness over a macroscopic area, few-layer flakes give rise to quantization of the mode shifts. We extract the dielectric constant of the flakes and find that it is independent of the layer number down to a monolayer. Flexible reconfiguration of a cavity is demonstrated by stacking and removing ultrathin flakes. With an unconventional cavity design, our results open up new possibilities for photonic devices integrated with two-dimensional materials.

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