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Angular quasi-phase-matching : theory and first experiments

机译:角度阶段匹配:理论和第一实验

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Advances in the periodic poling process have led to longer and larger PPLN crystals. Today it is also possible to prepare PPLN samples with a thickness of about 5 mm which allows the use of pump laser beams with a larger aperture, and so with a higher energy. Moreover thicker samples give the possibility to consider quasi-phase-matching (QPM) at any angle with respect to the grating periodicity. We called this scheme angular quasi-phase-matching (AQPM). In order to illustrate the potentiality of AQPM, we compared its tunability and spectral acceptance with that of BPM in the case of second harmonic generation (SHG) and difference frequency generation (DFG) in the periodically poled negative uniaxial 5%MgO:PPLN crystal, with a grating periodicity A = 32.2 gm. We found that AQPM exhibits complementary spectral range and acceptances compared with BPM. We experimentally performed the first validation of the theory of AQPM by cutting 5%MgO:PPLN as a polished sphere with a diameter of 3.9 mm in order to propagate beams in any direction of the crystal by keeping normal incidence. It allowed us to measure any SHG and DFG AQPM direction, with the associated efficiencies, the spectral and angular acceptances. They are reported with calculations.
机译:周期性极化过程的进步导致了更长且较大的PPLN晶体。如今,也可以制备厚度为约5mm的PPLN样品,其允许使用具有更大孔径的泵激光束,并且具有更高的能量。此外,较厚的样本能够以任何角度考虑拟相位匹配(QPM),相对于光栅周期性。我们称该方案角度对准相位匹配(AQPM)。为了说明AQPM的潜力,我们将其与BPM的可调性和光谱接受与在周期性极化负单轴5%MgO中的第二次谐波生成(SHG)和差频生成(DFG)的情况下进行了测量和光谱接受性.PPLN晶体,具有光栅周期a = 32.2克。我们发现,与BPM相比,AQPM表现出互补的光谱范围和可接受。我们通过切割5%MgO:PPLN作为一种直径为3.9mm的抛光球进行AQPM理论的第一次验证,以通过保持正常的入射,以便在晶体的任何方向上传播梁。它允许我们测量任何SHG和DFG AQPM方向,具有相关的效率,光谱和角度接受。他们报告了计算。

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