Nanoscale probing of image-dipole interactions in a metallic nanostructure

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Abstract

An emitter near a surface induces an image dipole that can modify the observed emission intensity and radiation pattern. These image-dipole effects are generally not taken into account in single-emitter tracking and super-resolved imaging applications. Here we show that the interference between an emitter and its image dipole induces a strong polarization anisotropy and a large spatial displacement of the observed emission pattern. We demonstrate these effects by tracking the emission of a single quantum dot along two orthogonal polarizations as it is deterministically positioned near a silver nanowire. The two orthogonally polarized diffraction spots can be displaced by up to 50â ‰nm, which arises from a Youngâ (tm) s interference effect between the quantum dot and its induced image dipole. We show that the observed spatially varying interference fringe provides a useful measure for correcting image-dipole-induced distortions. These results provide a pathway towards probing and correcting image-dipole effects in near-field imaging applications.

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Ropp, C., Cummins, Z., Nah, S., Fourkas, J. T., Shapiro, B., & Waks, E. (2015). Nanoscale probing of image-dipole interactions in a metallic nanostructure. Nature Communications , 6. https://doi.org/10.1038/ncomms7558

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