Department of Physics and Center for Complex Quantum Systems, The University of Texas at Austin, Austin, Texas 78712, USA.
Nat Nanotechnol. 2013 Feb;8(2):95-9. doi: 10.1038/nnano.2012.249. Epub 2013 Jan 27.
The lack of symmetry between electric and magnetic charges, a fundamental consequence of the small value of the fine-structure constant, is directly related to the weakness of magnetic effects in optical materials. Properly tailored plasmonic nanoclusters have been proposed recently to induce artificial optical magnetism based on the principle that magnetic effects are indistinguishable from specific forms of spatial dispersion of permittivity at optical frequencies. In a different context, plasmonic Fano resonances have generated a great deal of interest, particularly for use in sensing applications that benefit from sharp spectral features and extreme field localization. In the absence of natural magnetism, optical Fano resonances have so far been based on purely electric effects. In this Letter, we demonstrate that a subwavelength plasmonic metamolecule consisting of four closely spaced gold nanoparticles supports a strong magnetic response coupled to a broad electric resonance. Small structural asymmetries in the assembled nanoring enable the interaction between electric and magnetic modes, leading to the first observation of a magnetic-based Fano scattering resonance at optical frequencies. Our findings are supported by excellent agreement with simulations and analytical calculations, and represent an important step towards the quest for artificial magnetism and negative refractive index metamaterials at optical frequencies.
电电荷和磁电荷之间的不对称性,是精细结构常数小值的一个基本结果,与光材料中磁效应的弱直接相关。最近,人们提出了适当设计的等离子体纳米团簇,以基于磁效应与介电常数的特定形式的空间分散在光学频率下无法区分的原理来诱导人工光学磁性。在不同的背景下,等离子体 Fano 共振引起了极大的兴趣,特别是在受益于尖锐光谱特征和极端场局域化的传感应用中。在没有自然磁性的情况下,光学 Fano 共振迄今为止一直基于纯粹的电效应。在这封信中,我们证明了由四个紧密间隔的金纳米粒子组成的亚波长等离子体超分子结构支持与宽电共振耦合的强磁响应。组装纳米环中的微小结构不对称性使电和磁模式之间的相互作用成为可能,从而首次在光学频率下观察到基于磁的 Fano 散射共振。我们的发现与模拟和分析计算非常吻合,代表了在光学频率下寻找人工磁性和负折射率超材料的重要一步。