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Deep-ultraviolet second-harmonic generation by combined degenerate four-wave mixing and surface nonlinearity polarization in photonic crystal fiber

机译:光子晶体光纤中简并四波混频和表面非线性极化的组合产生深紫外二次谐波

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摘要

Deep-ultraviolet (UV) second-harmonics (SHs) have important applications in basic physics and applied sciences. However, it still remains challenging to generate deep-UV SHs especially in optical fibers. Here, for the first time, we experimentally demonstrate the deep-UV SH generations (SHGs) by combined degenerate four-wave mixing (FWM) and surface nonlinearity polarization in an in-house designed and fabricated air-silica photonic crystal fiber (PCF). When femtosecond pump pulses with average input power Pav of 650 mW and center wavelength λp of 810, 820, 830, and 840 nm are coupled into the normal dispersion region close to the zero-dispersion wavelength of the fundamental mode of the PCF, the anti-Stokes waves induced by degenerate FWM process are tunable from 669 to 612 nm. Then, they serve as the secondary pump, and deep-UV SHs are generated within the wavelength range of 334.5 to 306 nm as a result of surface nonlinearity polarization at the core-cladding interface of the PCF. The physical mechanism of the SHGs is confirmed by studying the dependences of the output power PSH of the SHs on the PCF length and time. Finally, we also establish a theoretical model to analyze the SHGs.
机译:深紫外线(UV)次谐波(SH)在基础物理学和应用科学中具有重要的应用。但是,产生深紫外线SH仍然具有挑战性,尤其是在光纤中。在这里,我们首次在内部设计和制造的空气-硅光子晶体光纤(PCF)中,通过组合简并四波混频(FWM)和表面非线性极化,以实验方式证明了深紫外SH世代(SHG)。 。当平均输入功率Pav为650 mW,中心波长λp为810、820、830和840 nm的飞秒泵浦脉冲耦合到接近PCF基本模式零色散波长的正常色散区域时, -简并的FWM过程引起的斯托克斯波可在669至612 nm范围内调谐。然后,它们用作次级泵,由于PCF纤芯-覆层界面处的表面非线性极化,在334.5至306 nm的波长范围内产生了深紫外线SHs。通过研究SH的输出功率PSH对PCF长度和时间的依赖性,可以确定SHG的物理机制。最后,我们还建立了理论模型来分析SHG。

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