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The thesis Surface Enhanced Raman Spectroscopy for Biophysical Applications explores the phenomenon of surface-enhanced Raman scattering (SERS), the huge amplification of Raman signal coming from molecules in proximity of a metallic nanostructured surface. SERS spectroscopy is an ultrasensitive analytical technique with a strong potential for applications in the fields of biophysics and nanomedicine. As a title of example, we discuss the design of nanocolloid-based SERS-active substrates for molecular sensing and of a folate-based SERS-active nanosensor capable of selectively interacting with cancer cells, enabling cancer diagnostics and therapy at single-cell level.
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The thesis Surface Enhanced Raman Spectroscopy for Biophysical Applications explores the phenomenon of surface-enhanced Raman scattering (SERS), the huge amplification of Raman signal coming from molecules in proximity of a metallic nanostructured surface. SERS spectroscopy is an ultrasensitive analytical technique with a strong potential for applications in the fields of biophysics and nanomedicine. As a title of example, we discuss the design of nanocolloid-based SERS-active substrates for molecular sensing and of a folate-based SERS-active nanosensor capable of selectively interacting with cancer cells, enabling cancer diagnostics and therapy at single-cell level.
Atsiliepimai