Periodically poled thin-film lithium niobate microring resonators with a second-harmonic generation efficiency of 250,000%/W

Периодически полированные тонкопленочные микрокольцевые резонаторы из ниобата лития с эффективностью генерации второй гармоники 250 000%/W
Yuntao Xu, Hong X. Tang, Zheng Gong, Juanjuan Lu, Joshua B. Surya, Xianwen Liu, Alexander W. Bruch
2019-11-21

absolute conversion efficiency 15%dual-band operationdual-resonant microringsfield-assisted domain engineeringmicroring resonatorson-chip SHG efficiency 250,000%/Wperiodically poled lithium niobatepulley waveguide couplingquasi-phase matchingsecond-harmonic generation (SHG)thin-film lithium niobate
Lithium niobate (LN), dubbed by many as the silicon of photonics, has recently risen to the forefront of chip-scale nonlinear optics research since its demonstration as an ultralow-loss integrated photonics platform. Due to its significant quadratic nonlinearity ($\chi^{(2)}$), LN inspires many important applications such as second-harmonic generation (SHG), spontaneous parametric down-conversion, and optical parametric oscillation. Here, we demonstrate high-efficiency SHG in dual-resonant, periodically poled z-cut LN microrings, where quasi-phase matching is realized by field-assisted domain engineering. Meanwhile, dual-band operation is accessed by optimizing the coupling conditions in fundamental and second-harmonic bands via a single pulley waveguide. As a result, when pumping a periodically poled LN microring in the low power regime at around 1617nm, an on-chip SHG efficiency of 250,000%/W is achieved, a state-of-the-art value reported among current integrated photonics platforms. An absolute conversion efficiency of 15% is recorded with a low pump power of 115$\mu$W in the waveguide. Such periodically poled LN microrings also present a versatile platform for other cavity-enhanced quasi-phase matched $\chi^{(2)}$ nonlinear optical processes.
1
Accessed dual-band operation by optimizing coupling conditions for fundamental and second-harmonic bands using a single pulley waveguide.
2
Achieved an on-chip SHG efficiency of 250,000%/W when pumping around 1617 nm in the low-power regime, reported as state-of-the-art among integrated photonics platforms.
3
Demonstrated high-efficiency second-harmonic generation (SHG) in dual-resonant, periodically poled z-cut lithium niobate (LN) microrings using field-assisted domain engineering for quasi-phase matching.
4
Measured an absolute conversion efficiency of 15% with only 115 μW pump power in the waveguide.
5
Periodically poled LN microrings provide a versatile platform for other cavity-enhanced, quasi-phase-matched χ(2) nonlinear optical processes.

Periodically poled z-cut lithium niobate (LN) thin-film microring resonators

Second-harmonic generation (SHG) performance and efficiency (on-chip conversion efficiency, absolute conversion, and dual-resonant quasi-phase-matched operation) enabled by field-assisted domain engineering and optimized coupling via a single pulley waveguide

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2019-11-21
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Yuntao Xu
Hong X. Tang
Zheng Gong
Juanjuan Lu
Joshua B. Surya
Xianwen Liu
Alexander W. Bruch
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