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Signatures of fano interferences in the electron energy loss spectroscopy and cathodoluminescence of symmetry-broken nanorod dimers

机译:电子能量损失谱中对称干扰的纳米棒二聚体的电子干扰光谱和阴极发光中的铁氧体干扰信号。

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摘要

Through numerical simulation, we predict the existence of the Fano interference effect in the electron energy loss spectroscopy (EELS) and cathodoluminescence (CL) of symmetry-broken nanorod dimers that are heterogeneous in material composition and asymmetric in length. The differing selection rules of the electron probe in comparison to the photon of a plane wave allow for the simultaneous excitation of both optically bright and dark plasmons of each monomer unit, suggesting that Fano resonances will not arise in EELS and CL. Yet, interferences are manifested in the dimer's scattered near- and far-fields and are evident in EELS and CL due to the rapid π-phase offset in the polarizations between super-radiant and subradiant hybridized plasmon modes of the dimer as a function of the energy loss suffered by the impinging electron. Depending upon the location of the electron beam, we demonstrate the conditions under which Fano interferences will be present in both optical and electron spectroscopies (EELS and CL) as well as a new class of Fano interferences that are uniquely electron-driven and are absent in the optical response. Among other things, the knowledge gained from this work bears impact upon the design of some of the world's most sensitive sensors, which are currently based upon Fano resonances.
机译:通过数值模拟,我们预测了对称断裂的纳米棒二聚体的电子能量损失谱(EELS)和阴极发光(CL)中存在Fano干涉效应,这些断裂在材料成分上异质且长度不对称。与平面波的光子相比,电子探针的不同选择规则允许同时激发每个单体单元的光学亮和暗等离子体激元,这表明在EELS和CL中不会出现Fano共振。然而,由于二聚体的超辐射和亚辐射杂化等离激元模式之间的极化中π的快速π相位偏移是二聚体的函数,因此干扰在二聚体的分散的近场和远场中表现出来,并且在EELS和CL中很明显。撞击电子所造成的能量损失。根据电子束的位置,我们证明了在光谱学和电子光谱学(EELS和CL)中将存在Fano干扰的条件,以及新型的Fano干扰是由电子驱动的,并且在电子学中不存在光学响应。除其他外,从这项工作中获得的知识对目前基于Fano共振的一些世界上最灵敏的传感器的设计产生影响。

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