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Deterministic Symmetry Breaking of Plasmonic Nanostructures Enabled by DNA-Programmable Assembly

机译:DNA可编程组装使能等离子体纳米结构的确定性对称性断裂

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摘要

The physical properties of matter rely fundamentally on the symmetry of constituent building blocks. This is particularly true for structures that interact with light via the collective motion of their conduction electrons (i.e., plasmonic materials), where the observation of exotic optical effects, such as negative refraction and electromagnetically induced transparency, require the coupling of modes that are only present in systems with nontrivial broken symmetries. Lithography has been the predominant fabrication technique for constructing plasmonic metamaterials, as it can be used to form patterns of arbitrary complexity, including those with broken symmetry. Here, we show that low-symmetry, one-dimensional plasmonic structures that would be challenging to make using traditional lithographic techniques can be assembled using DNA as a programmable surface ligand. We investigate the optical properties that arise as a result of systematic symmetry breaking and demonstrate the appearance of pi-type coupled modes formed from both dipole and quadrupole nanoparticle sources. These results demonstrate the power of DNA assembly for generating unusual structures that exhibit both fundamentally insightful and technologically important optical properties.
机译:物质的物理性质依赖于基本上对对称构建块的对称性。这对于通过其传导电子(即,等离子体材料)的集体运动与光相互作用的结构尤其如此,其中在异国折射和电磁诱导的透明度的异地光学效应(例如负折射和电磁诱导的透明度),需要偶联模式存在于具有非活动破损对称性的系统中。光刻是构建等离子体超材料的主要制造技术,因为它可用于形成任意复杂性的模式,包括具有破裂对称性的复杂性。在这里,我们表明,使用DNA作为可编程表面配体,可以组装低对称性,以采用传统光刻学技术进行具有挑战性的一维等离子体结构。我们研究了由于系统对称断裂而产生的光学性质,并证明由偶极子和四极纳米粒子源形成的PI型偶联模式的外观。这些结果证明了DNA组件的功率,用于产生外部结构的不寻常结构,其既具有根本富有识别和技术重要的光学性质。

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