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通过软光刻模板和定向自组装实现可见光范围内的机械可调表面晶格共振

Mechanotunable Surface Lattice Resonances in the Visible Optical Range by Soft Lithography Templates and Directed Self-Assembly.

作者信息

Gupta Vaibhav, Probst Patrick T, Goßler Fabian R, Steiner Anja Maria, Schubert Jonas, Brasse Yannic, König Tobias A F, Fery Andreas

机构信息

Institute for Physical Chemistry and Polymer Physics , Leibniz-Institut für Polymerforschung Dresden e.V. , Hohe Str. 6 , 01069 Dresden , Germany.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 7;11(31):28189-28196. doi: 10.1021/acsami.9b08871. Epub 2019 Jul 25.

Abstract

We demonstrate a novel colloidal self-assembly approach toward obtaining mechanically tunable, cost-efficient, and low-loss plasmonic nanostructures that show pronounced optical anisotropy upon mechanical deformation. Soft lithography and template-assisted colloidal self-assembly are used to fabricate a stretchable periodic square lattice of gold nanoparticles on macroscopic areas. We stress the impact of particle size distribution on the resulting optical properties. To this end, lattices of narrowly distributed particles (∼2% standard deviation in diameter) are compared with those composed of polydisperse ones (∼14% standard deviation). The enhanced particle quality sharpens the collective surface lattice resonances by 40% to achieve a full width at half-maximum as low as 16 nm. This high optical quality approaches the theoretical limit for this system, as revealed by electromagnetic simulations. One hundred stretching cycles demonstrate a reversible transformation from a square to a rectangular lattice, accompanied by polarization-dependent optical properties. On the basis of these findings we envisage the potential applications as strain sensors and mechanically tunable filters.

摘要

我们展示了一种新颖的胶体自组装方法,用于获得机械可调、成本效益高且低损耗的等离子体纳米结构,这些结构在机械变形时表现出明显的光学各向异性。软光刻和模板辅助胶体自组装被用于在宏观区域制造金纳米颗粒的可拉伸周期性方格晶格。我们强调了粒径分布对所得光学性质的影响。为此,将窄分布颗粒(直径标准偏差约为2%)的晶格与由多分散颗粒(标准偏差约为14%)组成的晶格进行了比较。提高的颗粒质量使集体表面晶格共振锐化了40%,以实现低至16nm的半高全宽。如电磁模拟所示,这种高光学质量接近该系统的理论极限。一百次拉伸循环展示了从方格到矩形晶格的可逆转变,并伴随着与偏振相关的光学性质。基于这些发现,我们设想了其作为应变传感器和机械可调滤波器的潜在应用。

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