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Nonlinear optical absorption and stimulated Mie scattering in metallic nanoparticle suspensions

机译:金属纳米颗粒悬浮液中的非线性光学吸收和受激Mie散射

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The nonlinear optical properties of four metallic (Au-, Au/Ag-, Ag-, and Pt-) nanoparticle suspensions in toluene have been studied in both femtosecond and nanosecond regimes. Nonlinear transmission measurements in the femtosecond laser regime revealed two-photon absorption (2PA) induced nonlinear attenuation, while in the nanosecond laser regime a stronger nonlinear attenuation is due to both 2PA and 2PA-induced excited-state absorption. In the nanosecond regime, at input pump laser intensities above a certain threshold value, a new type of stimulated (Mie) scattering has been observed. Being essentially different from all other well known molecular (Raman, Brillouin) stimulated scattering effects, the newly observed stimulated Mie scattering from the metallic nanoparticles exhibits the features of no frequency shift and low pump threshold requirement. A physical model of induced Bragg grating initiated by the backward Mie scattering from metallic nanoparticles is proposed to explain the gain mechanism of the observed stimulated scattering effect.
机译:在飞秒和纳秒范围内都研究了四种金属(Au-,Au / Ag-,Ag-和Pt-)纳米颗粒悬浮液的非线性光学性质。飞秒激光范围内的非线性透射测量显示了双光子吸收(2PA)引起的非线性衰减,而在纳秒激光范围内,更强的非线性衰减归因于2PA和2PA引起的激发态吸收。在纳秒范围内,在高于特定阈值的输入泵浦激光强度下,已经观察到一种新型的受激(Mie)散射。与所有其他众所周知的分子(拉曼,布里渊)激发的散射效应基本不同,新观察到的从金属纳米颗粒激发的米氏散射表现出无频移和低泵浦阈值要求的特征。提出了由金属纳米粒子的反向Mie散射引发的感应布拉格光栅的物理模型,以解释观察到的受激散射效应的增益机制。

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