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Second-Harmonic Generation from Sub-5 nm Gaps by Directed Self-Assembly of Nanoparticles onto Template-Stripped Gold Substrates

机译:通过将纳米粒子定向自组装到剥离了模板的金基板上,从亚5 nm间隙产生二次谐波

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摘要

Strong field enhancement and confinement in plasmonic nanostructures provide suitable conditions for nonlinear optics in ultracompact dimensions. Despite these enhancements, second-harmonic generation (SHG) is still inefficient due to the centrosymmetric crystal structure of the bulk metals used, e.g., Au and Ag. Taking advantage of symmetry breaking at the metal surface, one could greatly enhance SHG by engineering these metal surfaces in regions where the strong electric fields are localized. Here, we combine top-down lithography and bottom-up self-assembly to lodge single rows of 8 nm diameter Au nanoparticles into trenches in a Au film. The resultant "double gap" structures increase the surface-to-volume ratio of Au colocated with the strong fields in similar to 2 nm gaps to fully exploit the surface SHG of Au. Compared to a densely packed arrangement of AuNPs on a smooth Au film, the double gaps enhance SHG emission by 4200-fold to achieve an effective second-order susceptibility chi((2)) of 6.1 pm/V, making it comparable with typical nonlinear crystals. This patterning approach also allows for the scalable fabrication of smooth gold surfaces with sub-5 nm gaps and presents opportunities for optical frequency up-conversion in applications that require extreme miniaturization.
机译:等离子体纳米结构中的强场增强和限制为超紧凑尺寸的非线性光学提供了合适的条件。尽管进行了这些增强,但是由于所使用的例如Au和Ag的块状金属的中心对称晶体结构,因此二次谐波产生(SHG)仍然无效。利用在金属表面对称断裂的优势,可以通过在强电场局部区域对这些金属表面进行工程处理来大大增强SHG。在这里,我们结合了自上而下的光刻技术和自下而上的自组装技术,将直径为8 nm的金纳米颗粒的单行放置到金膜的沟槽中。所得的“双间隙”结构增加了与强场共置的Au的表面体积比,类似于2 nm的间隙,以充分利用Au的表面SHG。与在光滑的Au膜上紧密排列的AuNPs排列相比,双间隙将SHG发射提高了4200倍,从而实现了6.1 pm / V的有效二阶磁化率chi((2)),使其可与典型的非线性相媲美。晶体。这种图案化方法还允许可扩展地制造具有小于5 nm间隙的光滑金表面,并为要求极端小型化的应用提供了光学频率上转换的机会。

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