Resonant Combinatorial Frequency Generation Induced by a PT-symmetric Periodic Layered Stack
Oksana V. Shramkova, Giorgos P. Tsironis

TL;DR
This paper investigates how PT-symmetric layered structures can significantly enhance resonant three-wave mixing and frequency generation, especially near Wolf-Bragg resonances, with implications for nonlinear optical device efficiency.
Contribution
It demonstrates the enhancement of combinatorial frequency generation in PT-symmetric structures and analyzes the effects of layer arrangement and losses on nonlinear response.
Findings
Resonant cavities based on PT-symmetric structures significantly boost three-wave mixing.
Frequency conversion efficiency peaks near Wolf-Bragg resonances.
Losses in the nonlinear layer can increase frequency mixing intensity.
Abstract
The nonlinear interaction of waves in PT-symmetric periodic stacks with an embedded nonlinear anisotropic dielectric layer illuminated by plane waves of two tones is examined. The three-wave interaction technique is applied to study the nonlinear processes. It is shown that the intensity of the three-wave mixing process can be significantly enhanced in resonant cavities based on PT-symmetric periodic structures, especially as the pumping wave frequency is near the coherent perfect absorber-lasing resonances. The main mechanisms and properties of the combinatorial frequency generation and emission from the stacks are illustrated by the simulation results and the effect of the layer arrangement in PT-symmetric walls of resonator on the stack nonlinear response is discussed. The enhanced efficiency of the frequency conversion at Wolf-Bragg resonances is demonstrated. It has been shown that…
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Taxonomy
TopicsQuantum Mechanics and Non-Hermitian Physics · Nonlinear Photonic Systems · Photorefractive and Nonlinear Optics
