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Towards Polarization-based Excitation Tailoring for Extended Raman Spectroscopy

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arxiv 1905.12325 v1 pith:RFLBDCGS submitted 2019-05-29 physics.optics

Towards Polarization-based Excitation Tailoring for Extended Raman Spectroscopy

classification physics.optics
keywords ramanfieldspectroscopyspectraelectricexcitationindividualnanostructures
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Undoubtedly, Raman spectroscopy is one of the most elaborated spectroscopy tools in materials science, chemistry, medicine and optics. However, when it comes to the analysis of nanostructured specimens, accessing the Raman spectra resulting from an exciting electric field component oriented perpendicularly to the substrate plane is a difficult task and conventionally can only be achieved by mechanically tilting the sample, or by sophisticated sample preparation. Here, we propose a novel experimental method based on the utilization of polarization tailored light for Raman spectroscopy of individual nanostructures. As a proof of principle, we create three-dimensional electromagnetic field distributions at the nanoscale using tightly focused cylindrical vector beams impinging normally onto the specimen, hence keeping the conventional beam-path of commercial Raman systems. Using this excitation scheme, we experimentally show that the recorded Raman spectra of individual gallium-nitride nanostructures of sub-wavelength diameter used as a test platform depend sensitively on their location relative to the focal vector field. The observed Raman spectra can be attributed to the interaction with transverse or longitudinal electric field components. This novel technique may pave the way towards a characterization of Raman active nanosystems using full information of all Raman modes.

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