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Directional Second Harmonic Generation Controlled by Sub-wavelength Facets of an Organic Mesowire

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arxiv 1806.04869 v1 pith:5JMREJA7 submitted 2018-06-13 physics.optics cond-mat.mes-hallcond-mat.soft

Directional Second Harmonic Generation Controlled by Sub-wavelength Facets of an Organic Mesowire

classification physics.optics cond-mat.mes-hallcond-mat.soft
keywords mesowirenonlineardirectionalexcitationfacetsgenerationharmonicobserved
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Directional harmonic generation is an important property characterizing the ability of nonlinear optical antennas to diffuse the signal in well-defined region of space. Herein, we show how sub-wavelength facets of an organic molecular mesowire crystal can be utilized to systematically vary the directionality of second harmonic generation (SHG) in the forward scattering geometry. We demonstrate this capability on crystalline diamonoanthraquinone (DAAQ) mesowires with subwavelength facets. We observed that the radial angles of the SHG emission can be tuned over a range of 130 degrees. This angular variation arises due to spatially distributed nonlinear dipoles in the focal volume of the excitation as well as the geometrical cross-section and facet orientation of the mesowire. Numerical simulations of the near-field excitation profile corroborate the role of the mesowire geometry in localizing the electric field. In addition to directional SHG from the mesowire, we experimentally observe optical waveguiding of the nonlinear two-photon excited fluorescence (TPEF). Interestingly, we observed that for a given pump excitation, the TPEF signal is isotropic and delocalized, whereas the SHG emission is directional and localized at the location of excitation. All the observed effects have direct implications not only in active nonlinear optical antennas, but also in nonlinear signal processing.

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