Collective chiroptical activity through the interplay of excitonic and charge-transfer effects in localized plasmonic fields.
Huacheng LiXin XuRongcheng GuanArtur MovsesyanZhenni LuQiliang XuZiyun JiangYurong YangMajid KhanJin WenHongwei WuSantiago de la MoyaGil MarkovichHuatian HuZhiming WangQiang GuoTao YiAlexander O GovorovZhiyong TangXiang LanPublished in: Nature communications (2024)
The collective light-matter interaction of chiral supramolecular aggregates or molecular ensembles with confined light fields remains a mystery beyond the current theoretical description. Here, we programmably and accurately build models of chiral plasmonic complexes, aiming to uncover the entangled effects of excitonic correlations, intra- and intermolecular charge transfer, and localized surface plasmon resonances. The intricate interplay of multiple chirality origins has proven to be strongly dependent on the site-specificity of chiral molecules on plasmonic nanoparticle surfaces spanning the nanometer to sub-nanometer scale. This dependence is manifested as a distinct circular dichroism response that varies in spectral asymmetry/splitting, signal intensity, and internal ratio of intensity. The inhomogeneity of the surface-localized plasmonic field is revealed to affect excitonic and charge-transfer mixed intermolecular couplings, which are inherent to chirality generation and amplification. Our findings contribute to the development of hybrid classical-quantum theoretical frameworks and the harnessing of spin-charge transport for emergent applications.
Keyphrases
- energy transfer
- single molecule
- quantum dots
- capillary electrophoresis
- ionic liquid
- high intensity
- label free
- optical coherence tomography
- mass spectrometry
- room temperature
- magnetic resonance imaging
- computed tomography
- escherichia coli
- big data
- single cell
- magnetic resonance
- machine learning
- molecular dynamics
- artificial intelligence
- density functional theory
- pseudomonas aeruginosa
- water soluble
- candida albicans