Plasmon-enhanced chiral absorption through electric dipole–electric quadrupole interaction

IF 2 4区 物理与天体物理 Q3 OPTICS
Hanwei Wang and Yang Zhao
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引用次数: 0

Abstract

Enantioselective interactions of chiral molecules include distinct absorptions to opposite-handed circularly polarized light, known as chiral absorption. Traditionally, chiral absorption has been primarily attributed to electric dipole (ED) and magnetic dipole (MD) interaction with molecular chirality. However, this approach falls short for large molecules that support high-order multipolar components, such as electric quadrupole (EQ) moment. Here, we introduce a theoretical model to study the chiral absorption of large molecules in the presence of plasmonic nanostructures. This model considers both ED–MD interaction and ED–EQ interaction enhanced by a resonant structure. We numerically study such interactions of the chiral molecular solution in the vicinity of an achiral plasmonic nano-resonator. Our results show the distinct spectral information of the chiral medium on- and off-resonance of the resonator.
通过电偶极子-电四极子相互作用实现质子增强手性吸收
手性分子的对映选择性相互作用包括对反手圆偏振光的独特吸收,即所谓的手性吸收。传统上,手性吸收主要归因于电偶极子(ED)和磁偶极子(MD)与分子手性的相互作用。然而,对于支持高阶多极成分(如电四极矩)的大分子来说,这种方法并不适用。在此,我们引入一个理论模型来研究大分子在等离子纳米结构存在下的手性吸收。该模型同时考虑了 ED-MD 相互作用和由共振结构增强的 ED-EQ 相互作用。我们用数值方法研究了手性分子溶液在非手性等离子纳米谐振器附近的这种相互作用。我们的研究结果表明,手性介质在谐振器共振和非共振时的光谱信息截然不同。
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来源期刊
CiteScore
4.50
自引率
4.80%
发文量
237
审稿时长
1.9 months
期刊介绍: Journal of Optics publishes new experimental and theoretical research across all areas of pure and applied optics, both modern and classical. Research areas are categorised as: Nanophotonics and plasmonics Metamaterials and structured photonic materials Quantum photonics Biophotonics Light-matter interactions Nonlinear and ultrafast optics Propagation, diffraction and scattering Optical communication Integrated optics Photovoltaics and energy harvesting We discourage incremental advances, purely numerical simulations without any validation, or research without a strong optics advance, e.g. computer algorithms applied to optical and imaging processes, equipment designs or material fabrication.
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