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由 DNA 折纸术组装的手性等离子体超表面

Chiral plasmonic metasurface assembled by DNA origami.

出版信息

Opt Express. 2024 Apr 22;32(9):16040-16051. doi: 10.1364/OE.520522.

Abstract

Chiral materials are essential to perceive photonic devices that control the helicity of light. However, the chirality of natural materials is rather weak, and relatively thick films are needed for noticeable effects. To overcome this limitation, artificial photonic materials were suggested to affect the chiral response in a much more substantial manner. Ideally, a single layer of such a material, a metasurface, should already be sufficient. While various structures fabricated with top-down nanofabrication technologies have already been reported, here we propose to utilize scaffolded DNA origami technology, a scalable bottom-up approach for metamolecule production, to fabricate a chiral metasurface. We introduce a chiral plasmonic metamolecule in the shape of a tripod and simulate its optical properties. By fixing the metamolecule to a rectangular planar origami, the tripods can be assembled into a 2D DNA origami crystal that forms a chiral metasurface. We simulate the optical properties but also fabricate selected devices to assess the experimental feasibility of the suggested approach critically.

摘要

手性材料对于感知控制光手性的光子器件至关重要。然而,天然材料的手性通常较弱,需要较厚的薄膜才能产生明显的效果。为了克服这一限制,人们提出了人工光子材料,可以以更显著的方式影响手性响应。理想情况下,这种材料的单层,即超表面,应该就足够了。虽然已经有报道采用自上而下的纳米制造技术制造了各种结构,但在这里,我们建议利用支架 DNA 折纸技术(一种用于制造超分子结构的可扩展的自下而上的方法)来制造手性超表面。我们提出了一种三脚架形状的手性等离子体超分子,并对其光学性质进行了模拟。通过将超分子固定在矩形平面折纸结构上,三脚架可以组装成二维 DNA 折纸晶体,从而形成手性超表面。我们不仅模拟了光学性质,还制作了选定的器件,以批判性地评估所提出方法的实验可行性。

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