The application of gold nanostars in direct and indirect surface-enhanced raman spectroscopy (SERS) sensing has significantly grown in the past few years, mainly because of the particles’excellentfield enhancement properties. However,experimental demonstrations correlating SERS signal enhancements to specific morphology features of the nanostars are still scarce, primarily because of the complexity of the nanostar morphology itself. Herein, we have addressed this fundamental issueby synthesizing surfactant-free gold nanostars, coating them with a uniform silica layer, and then etching the silica away selectively with NaBH4to expose increasing amounts of the metallic surface. We have then functionalized the nanoparticles witha Raman active molecule, aminothiophenol (ATP), and compared the resulting SERS spectra with those obtained on surfactant-free stars functionalized with ATP. Through comparison of the experimental results with the electricfield intensities and distributions calculated viafinite element simulations, we have observed a strong correlation between the Raman signal enhancements obtained experimentally and the heat losses calculated on three-dimensional representations of the same nanostructures. We believe that our model could be used to predict the effectiveness of nanostars at enhancing SERS signalsbased on their overall morphology, even when thorough experimental characterization is lacking.

Shaping Gold Nanostar Electric Fields for Surface- Enhanced Raman Spectroscopy Enhancement via Silica Coating and Selective Etching / Atta, S; Tsoulos, T V; Fabris, L. - In: JOURNAL OF PHYSICAL CHEMISTRY. C. - ISSN 1932-7447. - 120:37(2016), pp. 20749-20758. [10.1021/acs.jpcc.6b01949]

Shaping Gold Nanostar Electric Fields for Surface- Enhanced Raman Spectroscopy Enhancement via Silica Coating and Selective Etching

Fabris L
2016

Abstract

The application of gold nanostars in direct and indirect surface-enhanced raman spectroscopy (SERS) sensing has significantly grown in the past few years, mainly because of the particles’excellentfield enhancement properties. However,experimental demonstrations correlating SERS signal enhancements to specific morphology features of the nanostars are still scarce, primarily because of the complexity of the nanostar morphology itself. Herein, we have addressed this fundamental issueby synthesizing surfactant-free gold nanostars, coating them with a uniform silica layer, and then etching the silica away selectively with NaBH4to expose increasing amounts of the metallic surface. We have then functionalized the nanoparticles witha Raman active molecule, aminothiophenol (ATP), and compared the resulting SERS spectra with those obtained on surfactant-free stars functionalized with ATP. Through comparison of the experimental results with the electricfield intensities and distributions calculated viafinite element simulations, we have observed a strong correlation between the Raman signal enhancements obtained experimentally and the heat losses calculated on three-dimensional representations of the same nanostructures. We believe that our model could be used to predict the effectiveness of nanostars at enhancing SERS signalsbased on their overall morphology, even when thorough experimental characterization is lacking.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2983148