4.8 Article

Self-Assembly of Plasmonic Nanoantenna-Waveguide Structures for Subdiffractional Chiral Sensing

期刊

ACS NANO
卷 15, 期 1, 页码 351-361

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.0c05240

关键词

plasmonics; nanoparticle assemblies; core-shell; spin-orbit coupling; chirality; circular dichroism; nano-optics

资金

  1. Deutsche Forschungsgemeinschaft (DFG) [182087777-SFB 951]

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This study demonstrates local, subdiffraction limited chiral coupling of light and propagating surface plasmon polaritons in a self-assembled system. Characterization of the nanoantenna-nanowire systems is done comprehensively through various imaging techniques, supported by three-dimensional numerical simulations. The system shows promise for on-chip sensing of chiral analytes far below the diffraction limit.
Spin-momentum locking is a peculiar effect in the near-field of guided optical or plasmonic modes. It can be utilized to map the spinning or handedness of electromagnetic fields onto the propagation direction. This motivates a method to probe the circular dichroism of an illuminated chiral object. In this work, we demonstrate local, subdiffraction limited chiral coupling of light and propagating surface plasmon polaritons in a self-assembled system of a gold nanoantenna and a silver nanowire. A thin silica shell around the nanowire provides precise distance control and also serves as a host for fluorescent molecules, which indicate the direction of plasmon propagation. We characterize our nanoantenna-nanowire systems comprehensively through correlated electron microscopy, energy-dispersive X-ray spectroscopy, dark-field, and fluorescence imaging. Three-dimensional numerical simulations support the experimental findings. Besides our measurement of far-field polarization, we estimate sensing capabilities and derive not only a sensitivity of 1 mdeg for the ellipticity of the light field, but also find 10(3) deg cm(2)/dmol for the circular dichroism of an analyte locally introduced in the hot spot of the antenna-wire system. Thorough modeling of a prototypical design predicts on-chip sensing of chiral analytes. This introduces our system as an ultracompact sensor for chiral response far below the diffraction limit.

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