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Time-resolved Second-harmonic Generation from Gold Nanoparticle Arrays

机译:来自金纳米粒子阵列的时间分辨的二次谐波产生

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We have studied the effects of planar inversion symmetry and particle-coupling of gold nanoparticle (NP) arrays by angle dependent second-harmonic generation (SHG). Time- and angle- resolved measurements were made using a mode-locked Ti:sapphire 800 nm laser onto gold NP arrays with plasmon resonance tuned to match the laser wavelength in order to produce maximum SHG signal. Finite-difference time domain simulations are used to model the near-field distributions for the various geometries and compared to experiment. The arrays were fabricated by focused ion-beam lithography and metal vapor deposition followed by standard lift-off protocols, producing NPs approximately 20nm high with various in-plane dimensions and interparticle gaps. Above a threshold fluence of ~ 7.3 x 10~5 mJ/cm2 we find that the SHG scales with the third power of intensity, rather than the second, and atomic-force microscopy shows that the NPs have undergone a reshaping process leading to more nearly spherical shapes.
机译:我们已经研究了角度依赖性二次谐波生成(SHG)的平面反转对称对称和粒子偶联的金纳米粒子(NP)阵列的影响。使用模式和角度分辨的测量使用模式锁定的Ti:蓝宝石800nm激光到金NP阵列上,等离子体谐振调谐以匹配激光波长以产生最大SHG信号。有限差分时域模拟用于模拟各种几何形状的近场分布,并与实验相比。通过聚焦离子束光刻和金属气相沉积,然后用标准剥离方案制造阵列,产生大约20nm高的NPS,具有各种面内尺寸和颗粒间隙。高于阈值速度〜7.3×10〜5 mj / cm2,我们发现SHG尺寸的强度,而不是第二种,而原子力显微镜表明,NPS经过重塑过程,导致更近的重塑过程球形形状。

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