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Random quasi-phase-matching in bulk polycrystalline isotropic nonlinear materials

机译:块状多晶各向同性非线性材料中的随机准相位匹配

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Three-wave mixing in nonlinear materials-the interaction of two light waves to produce a third-is a convenient way of generating new optical frequencies from common laser sources. However, the resulting optical conversion yield is generally poor, because the relative phases of the three interacting waves change continuously as they propagate through the material(1). This phenomenon, known as phase mismatch, is a consequence of optical dispersion ( wave velocity is frequency dependent), and is responsible for the poor optical conversion potential of isotropic nonlinear materials(2). Here we show that exploiting the random motion of the relative phases in highly transparent polycrystalline materials can be an effective strategy for achieving efficient phase matching in isotropic materials. Distinctive features of this 'random quasi-phase-matching' approach are a linear dependence of the conversion yield with sample thickness (predicted in ref. 3), the absence of the need for either preferential materials orientation or specific polarization selection rules, and the existence of a wavelength-dependent resonant size for the polycrystalline grains.
机译:非线性材料中的三波混合(两种光波相互作用产生第三种光波)是一种从普通激光源产生新光频率的便捷方法。但是,由于三个相互作用波的相对相位在它们传播通过材料(1)时不断变化,因此最终的光学转换产量通常很差。这种现象称为相位失配,是光学色散的结果(波速取决于频率),并导致各向同性非线性材料的较差的光学转换潜能(2)。在这里我们表明,在高度透明的多晶材料中利用相对相的随机运动可能是在各向同性材料中实现有效相匹配的有效策略。这种“随机准相位匹配”方法的显着特征是转化率与样品厚度的线性相关性(在参考文献3中进行了预测),不需要优先的材料取向或特定的极化选择规则,以及多晶晶粒的波长相关谐振尺寸的存在。

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