AI Article Synopsis

  • Plasmonic nano-objects are gaining attention for their ability to enhance various applications, including sensing and energy transfer, leading to significant research efforts in optimizing these systems.
  • The study explores how quantum dots (QDs) interact with "L-shaped" gold nanoantennas, revealing that this interaction alters the QD's emission intensity, polarization, and localization.
  • The findings, backed by simulations and microscopy, show that changes in the QD's position can reach up to 100 nm, contributing to improved precision in mapping plasmonic near-fields for future applications.

Article Abstract

Plasmonic nano-objects have shown great potential in enhancing applications like biological/chemical sensing, light harvesting and energy transfer, and optical/quantum computing. Therefore, an extensive effort has been vested in optimizing plasmonic systems and exploiting their field enhancement properties. Super-resolution imaging with quantum dots (QDs) is a promising method to probe plasmonic near-fields but is hindered by the distortion of the QD radiation pattern. Here, we investigate the interaction between QDs and "L-shaped" gold nanoantennas and demonstrate both theoretically and experimentally that this strong interaction can induce polarization-dependent modifications to the apparent QD emission intensity, polarization, and localization. Based on FDTD simulations and polarization-modulated single-molecule microscopy, we show that the displacement of the emitter's localization is due to the position-dependent interference between the emitter and the induced dipole, and can be up to 100 nm. Our results help pave a pathway for higher precision plasmonic near-field mapping and its underlying applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9150090PMC
http://dx.doi.org/10.1021/acs.jpclett.1c04123DOI Listing

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