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首页> 外文期刊>Chemphyschem: A European journal of chemical physics and physical chemistry >Theory of chiral plasmonic nanostructures comprising metal nanocrystals and chiral molecular media
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Theory of chiral plasmonic nanostructures comprising metal nanocrystals and chiral molecular media

机译:包含金属纳米晶体和手性分子介质的手性等离子体纳米结构的理论

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Plasmonic nanocrystals strongly interact with chiral molecular shells through electric and magnetic fields and in this way acquire new chiro-optical properties. Transfer of chirality from biomolecules to the plasmonic resonances is a collective phenomenon and strongly depends on the geometry of nanostructure. Collective effects in a molecular chiral shell may suppress or enhance plasmonic circular dichroism (CD) depending on the geometry of hybrid nanocrystal. In large chiral plasmonic structures, we identify a new electrodynamic mechanism of plasmonic CD that is qualitatively different to the near-field, dipolar mechanism of the plasmonic chirality described by us previously. Our models also show that anisotropic nanocrystals, such as nanorods or oriented molecular shells, have strongly enhanced CD at the plasmonic frequency. A family of chiral plasmonic nanostructures proposed and modeled here can be used for designing new optical media and chiral sensors. Chirality transfer: In large chiral plasmonic structures, a new electrodynamic mechanism of plasmonic CD that is qualitatively different to near-field, dipolar mechanism of plasmonic chirality is described. The models presented also show that anisotropic nanocrystals have strongly enhanced CD at the plasmonic frequency.
机译:等离子体纳米晶体通过电场和磁场与手性分子壳强烈相互作用,从而获得新的手性光学特性。手性从生物分子到等离子体共振的转移是一种集体现象,在很大程度上取决于纳米结构的几何形状。根据杂化纳米晶体的几何形状,分子手性壳中的集体效应可能会抑制或增强等离激元圆二色性(CD)。在大型手性等离子体结构中,我们确定了质子CD的一种新的电动力学机理,该机理与我们先前描述的等离子体手性的近场偶极机理在质上有所不同。我们的模型还显示,各向异性纳米晶体(例如纳米棒或定向分子壳)在等离子体频率下具有显着增强的CD。本文提出和建模的手性等离子体纳米结构家族可用于设计新的光学介质和手性传感器。手性转移:在大型手性等离激元结构中,描述了质子CD的一种新的电动力学机理,该机理与质子手性的近场,偶极机理不同。提出的模型还表明,各向异性纳米晶体在等离激元频率上具有显着增强的CD。

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