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Magnetic Plasmon-Enhanced Second-Harmonic Generation on Colloidal Gold Nanocups

机译:胶体金纳米厂上磁性等离子体增强的二次谐波发电

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The magnetic plasmons of three-dimensional nanostructures have unique optical responses and special significance for optical nanoresonators and nanoantennas. In this study, we have successfully synthesized colloidal Au and AuAg nanocups with a well-controlled asymmetric geometry, tunable opening sizes, and normalized depths (h/b, where h is depth and b is the height of the templating PbS nanooctahedrons), variable magnetic plasmon resonance, and largely enhanced second-harmonic generation (SHG). The most-efficient SHG of the bare Au nanocups is experimentally observed when the normalized depth h/b is adjusted to similar to 0.78-0.79. We find that the average magnetic field enhancement is maximized at h/b = similar to 0.65 and reveal that the maximal SHG can be attributed to the joint action of the optimized magnetic plasmon resonance and the "lightning-rod effect" of the Au nanocups. Furthermore, we demonstrate for the first time that the AuAg heteronanocups prepared by overgrowth of Ag on the Au nanocups can synergize the magnetic and electric plasmon resonances for nonlinear enhancement. By the tailoring of the dual resonances at the fundamental excitation and second-harmonic wavelengths, the far-field SHG intensity of the AuAg nanocups is enhanced 21.8-fold compared to that of the bare Au nanocups. These findings provide a strategy for the design of nonlinear optical nanoantennas based on magnetic plasmon resonances and can lead to diverse applications ranging from nanophotonics to biological spectroscopy.
机译:三维纳米结构的磁等压子具有独特的光学响应和光学纳米谐环的特殊意义。在这项研究中,我们已经成功地合成了具有良好控制的不对称几何形状,可调谐开口尺寸和归一化深度的胶体AU和AuAG纳米罩(H / B,其中H是深度,B是模板PBS NanoOdaDRONS的高度),可变磁性等离子体共振,大部分增强二次谐波发电(SHG)。当归一化深度H / B调节至类似于0.78-0.79时,通过实验观察到裸AU纳米覆的最有效的SHG。我们发现,平均磁场增强是H最大化/ B =类似于0.65和揭示最大SHG可以归结为优化磁等离子体共振的联合行动和Au纳米杯的“避雷针效应”。此外,我们首次证明了通过过度生长的AG在Au nanocups上制备的Auag异瘤可以协同磁性和电等离子体共振来协同非线性增强。通过基本激励和二次谐波波长的双谐振剪裁,与裸AU纳米覆盖相比,Auag纳米厂的远场SHG强度增强了21.8倍。这些发现提供了基于磁性等离子体共振的非线性光学纳米环绕的策略,并且可以导致从纳米光源到生物光谱的不同应用。

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