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Experimental demonstration of novel cascaded SFG+DFG wavelength conversion of picosecond pulses in LiNbO_3 waveguides

机译:LiNbO_3波导中新型皮秒级联SFG + DFG皮秒脉冲波长转换的实验演示

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摘要

A novel cascaded χ~((2)) wavelength conversion of picosecond pulses based on sum frequency generation and difference frequency generation (SFG+DFG) is proposed and experimentally demonstrated in LiNbO_3 waveguides. The signal pulse with 40-GHz repetition rate and 1.57-ps pulse width is adopted. First of all, high conversion efficiency about -18.93dB can be achieved with low power level required for both two pump lights, which is greatly enhanced approximately 8dB compared with the conventional cascaded second-order nonlinear interactions (SHG+DFG) with a single and much higher power pump. Secondly, the wavelength of the converted idler wave can be tuned from 1527.4 to 1540.5nm when the signal wavelength is changed from 1561.9 to 1548.4nm, and about 13.1nm converted idler bandwidth is achieved with the conversion efficiency higher than -31dB. Thirdly, two pump wavelengths can be separated as large as 17.3nm. Meanwhile, when one pump wavelength is fixed at 1549.1nm, the other can be tuned within a wide wavelength range about 7.6nm with the conversion efficiency higher than -34dB, which is much larger than that in the SHG+DFG situation. Finally, the temporal waveform of the converted idler pulse is observed with rather clear appearance achieved, and no obvious changes of the pulse shape and width are found compared with its corresponding original injected signal, showing that our proposed scheme exhibits a very good conversion performance.
机译:提出了一种基于和频产生和差频产生(SFG + DFG)的皮秒级联的皮秒级χ〜((2))波长转换方法,并在LiNbO_3波导中进行了实验验证。采用具有40 GHz重复频率和1.57 ps脉冲宽度的信号脉冲。首先,两个泵浦光所需的低功率水平都可以实现约-18.93dB的高转换效率,与传统的级联二阶非线性相互作用(SHG + DFG)相比,单个泵浦和两个泵浦光大大提高了约8dB。功率更高的泵。其次,当信号波长从1561.9nm变为1548.4nm时,可以将转换后的闲散波的波长从1527.4nm调整到1540.5nm,并以-31dB以上的转换效率获得约13.1nm的转换后的闲散带宽。第三,可以将两个泵浦波长分开,最大可达17.3nm。同时,当一个泵浦波长固定在1549.1nm时,另一个可以在7.6nm左右的宽波长范围内调谐,转换效率高于-34dB,远大于SHG + DFG情况下的转换效率。最后,观察到转换后的空转脉冲的时间波形,并获得了相当清晰的外观,与相应的原始注入信号相比,没有发现脉冲形状和宽度的明显变化,表明我们提出的方案具有很好的转换性能。

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