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首页> 外文期刊>Small >Substrate Phonon-Mediated Plasmon Hybridization in Coplanar Graphene Nanostructures for Broadband Plasmonic Circuits
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Substrate Phonon-Mediated Plasmon Hybridization in Coplanar Graphene Nanostructures for Broadband Plasmonic Circuits

机译:宽带等离子电路共面石墨烯纳米结构中的基质声子介导的等离子杂交。

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摘要

The mode hybridization between adjacent graphene nanoribbons determines the integration density of graphene-based plasmonic devices. Here, plasmon hybridization in graphene nanostructures is demonstrated through the characterization of the coupling strength of plasmons in graphene nanoribbons as a function of charge density and inter-ribbon spacing using Fourier transform infrared microscopy. In combination with numerical simulations, it is shown that the plasmon coupling is strongly mediated by the substrate phonons. For polar substrates, the plasmon coupling strength is limited by the plasmon-phonon interactions. In contrast, a nonpolar substrate affects neither the energy distribution of the original plasmon modes in graphene nanostructures nor their plasmon interactions, which increases exponentially as the inter-ribbon spacing decreases. To further explore the potential of graphene broadband plasmonics on nonpolar substrates, a scheme is proposed that uses a metal-dielectric heterostructure to prevent the overlap of plasmons between neighboring graphene nanoribbons. The device structures retain the plasmon resonance frequency of the graphene ribbons and maximally isolate the plasmonic components from the surrounding electromagnetic environment, allowing modular design in integrated plasmonic circuits.
机译:相邻石墨烯纳米带之间的模式杂交决定了基于石墨烯的等离激元器件的集成密度。在这里,通过使用傅里叶变换红外显微镜表征石墨烯纳米带中的等离子体激元的耦合强度,作为电荷密度和碳带间距的函数,证明了石墨烯纳米结构中的等离子体激元杂交。结合数值模拟表明,等离子体激元的耦合是由底物声子强烈介导的。对于极性基质,等离激元耦合强度受等离激元-声子相互作用的限制。相反,非极性基底既不影响石墨烯纳米结构中原始等离激元模式的能量分布,也不影响其等离激元相互作用,其随着带间间距减小而呈指数增加。为了进一步探索石墨烯宽带等离激元在非极性基板上的潜力,提出了一种使用金属介电异质结构来防止相邻石墨烯纳米带之间的等离激元重叠的方案。器件结构保留了石墨烯带的等离激元共振频率,并最大程度地将了等离激元与周围的电磁环境隔离开来,从而允许在集成等离激元电路中进行模块化设计。

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