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Raman enhancement on a broadband meta-surface

机译:宽带超表面上的拉曼增强

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Plasmonic metamaterials allow confinement of light to deep subwavelength dimensions, while allowing for the tailoring of dispersion and electromagnetic mode density to enhance specific photonic properties. Optical resonances of plasmonic molecules have been extensively investigated; however, benefits of strong coupling of dimers have been overlooked. Here, we construct a plasmonic meta-surface through coupling of diatomic plasmonic molecules which contain a heavy and light meta-atom. Presence and coupling of two distinct types of localized modes in the plasmonic molecule allow formation and engineering of a rich band structure in a seemingly simple and common geometry, resulting in a broadband and quasi-omni-directional meta-surface. Surface-enhanced Raman scattering benefits from the simultaneous presence of plasmonic resonances at the excitation and scattering frequencies, and by proper design of the band structure to satisfy this condition, highly repeatable and spatially uniform Raman enhancement is demonstrated. On the basis of calculations of the field enhancement distribution within a unit cell, spatial uniformity of the enhancement at the nanoscale is discussed. Raman scattering constitutes an example of nonlinear optical processes, where the wavelength conversion during scattering may be viewed as a photonic transition between the bands of the meta-material.
机译:等离子体等离子材料可以将光限制在深亚波长范围内,同时可以调整色散和电磁模式密度,以增强特定的光子性能。等离子体激元分子的光学共振已被广泛研究。然而,二聚体强结合的好处被忽略了。在这里,我们通过耦合包含重轻原子的双原子等离子分子来构建等离子元表面。等离子体分子中两种不同类型的局部模式的存在和耦合,使得它们可以在看似简单和常见的几何形状中形成和工程化一个宽带结构,从而形成宽带和准全向的元表面。表面增强的拉曼散射得益于在激发和散射频率下等离子体共振的同时存在,并且通过适当设计能满足该条件的能带结构,证明了高度可重复且空间均匀的拉曼增强。基于晶胞内场增强分布的计算,讨论了纳米级增强的空间均匀性。拉曼散射构成了非线性光学过程的一个例子,其中散射过程中的波长转换可以看作是超材料带之间的光子跃迁。

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