Mapping Phonon Polaritons with Visible Light
ORAL
Abstract
Surface phonon polaritons (SPhPs) are modes resulting from the strong coupling of infrared light with optical phonons in polar materials. SPhPs show great promise for tailoring light-matter interactions at size-scales below the diffraction limit. Interrogating SPhP modes has mostly been pursued by measuring the far field behavior of resonant modes (i.e., eigenvalues), through which SPhPs can be investigated through resonant frequencies and linewidths along with the strength of the resonances. In other instances, the study of SPhPs has been accomplished by mapping electromagnetic fields (i.e., eigenstates) solely at the surface of nanostructured resonators by atomic force microscopy assisted techniques and, in some limited cases, measuring the three-dimensional fields using electron scattering. Accurate knowledge of SPhPs has been hindered by the absence of experimental techniques to map eigenstates in three dimensions that are easy, cheap, and non-destructive.This work demonstrates the direct experimental measurement of infrared SPhPs eigenstates through 3-D Raman mapping. In particular, we apply this technique to map SPhPs in nanopillars of Indium Phosphide (InP). Furthermore, we demonstrate that SPhPs couple to bulk Raman modes through the material's polarizability and, to a lesser extent, via electron-phonon coupling. These observations provide a new method for measuring SPhP modes in nanostructured materials and a novel way to investigate the physical phenomena involved in coupling bulk phonons to SPhPs.
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Presenters
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Kiernan E Arledge
University of Oklahoma
Authors
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Kiernan E Arledge
University of Oklahoma
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Michael A Meeker
US Naval Research Laboratory, Naval Research Laboratory
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Chase T Ellis
US Naval Research Laboratory, Naval Research Laboratory, Naval Research Lab
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NAZLI RASOULI SARABI
UNIVERSITY OF OKLAHOMA
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Vincent R Whiteside
Univ of Oklahoma
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Chul Soo Kim
United States Naval Research Laboratory
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Mijin Kim
Naval Research Laboratory
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Daniel Ratchford
Naval Research Laboratory
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Binbin Weng
University of Oklahoma
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Joseph G Tischler
University of Oklahoma