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Direct Printing of Micropatterned Plasmonic Substrates of Size-Controlled Gold Nanoparticles by Precision Photoreduction

机译:通过精密光电直接印刷尺寸控制的金纳米粒子的微透明质子底物

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摘要

Although the extraordinary optical property of gold nanoparticles (AuNPs) has been known for a long time, the anticipated applications of AuNPs in plasmonically enhanced substrates and photonic microdevices are still under development. In this paper, a method for the direct printing of micrometer-scale patterns of size-controlled AuNPs is presented for plasmonic substrates and microsensor development. Using in-house digital ultraviolet lithography, a precision photoreduction technology is developed for light-controlled growth of AuNPs to create micrometer-scale micropatterns on a titanium dioxide photocatalytic layer. The titanium dioxide thin layer not only enables a photocatalytic reduction process for high-precision printing of size-controlled AuNPs in an additive manner, but also introduces a Fano resonance that can sharpen spectral width of localized surface plasmon resonance peak and increase its peak-to-valley value. This printing technology can be used to cost-effectively fabricate size-scalable micropatterned plasmonic substrates of size-controlled AuNPs and thus offers new opportunities to develop various types of miniature plasmonic devices ranging from plasmonic biochemical sensors to plasmonically enhanced photothermal and photovoltaic microdevices.
机译:尽管长期以来已知金纳米粒子(AUNP)的非凡光学性质,但是仍在发生量增强的基板和光子微生物中的ageps预期应用仍在开发中。本文提出了一种用于直接印刷尺寸控制的尺度控制的尺度模式的方法,用于等离子体基材和微体传导。采用内部数字紫外线光刻,开发了一种精密光电触控技术,用于在二氧化钛光催化层上产生微量计量微图案。二氧化钛薄层不仅能够以附加方式实现高精度印刷的光催化还原过程,还引入了一个扇形共振,可以锐化局部表面等离子体共振峰的光谱宽度,并增加其峰值-Valley价值。该印刷技术可用于成本有效地制造大小控制的AUNP的尺寸可伸缩的微图形等离子体基板,因此提供了开发各种类型的微型等离子体装置,从而从等离子体生物化学传感器到相传的光热和光伏微生物的各种类型的微型等离子体装置。

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