UV-SERS monitoring of plasmons photodegradation of biomolecules on Aluminum platforms decorated with Rhodium nanoparticles

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Zou, Yanqiu, Mattarozzi, Luca, Jin, Huaizhou, Ma, Qifei, Cattarin, Sandro, Weng, Shukun, Douaki, Ali, Lanzavecchia, German, Kołątaj, Karol, Corduri, Nicco, Johns, Ben, Maccaferri, Nicolò, Acuna, Guillermo, Zheng, Zhenrong, Jin, Shangzhong, Garoli, Denis
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911228731850752
author Zou, Yanqiu
Mattarozzi, Luca
Jin, Huaizhou
Ma, Qifei
Cattarin, Sandro
Weng, Shukun
Douaki, Ali
Lanzavecchia, German
Kołątaj, Karol
Corduri, Nicco
Johns, Ben
Maccaferri, Nicolò
Acuna, Guillermo
Zheng, Zhenrong
Jin, Shangzhong
Garoli, Denis
author_facet Zou, Yanqiu
Mattarozzi, Luca
Jin, Huaizhou
Ma, Qifei
Cattarin, Sandro
Weng, Shukun
Douaki, Ali
Lanzavecchia, German
Kołątaj, Karol
Corduri, Nicco
Johns, Ben
Maccaferri, Nicolò
Acuna, Guillermo
Zheng, Zhenrong
Jin, Shangzhong
Garoli, Denis
contents In the search for novel nanostructured materials for UV plasmonics a limited number of choices can be done. Materials such as aluminum, rhodium, gallium and few others can be used. One of the most interesting application for UV plasmonics is Surface Enhanced Raman Spectroscopy. It can be extended to this spectral range to explore spectral properties of biomolecules that have only a small cross section in the visible spectral range. We have recently reported on a functional substrates based on nanoporous aluminum decorated with rhodium nanoparticles. This system showed an interesting behavior for UV excitation at 266 nm, with an unexpected decreasing Raman intensity for increasing rhodium nanoparticles concentrations. We proposed that this effect can be due to the difficult access to the hot spots for the molecules deposited via thermal evaporation. Here we extend this study exploring the performance of the system at another UV excitation wavelengths (325 nm) reporting on experimental results obtained using a deposition process that can bring the molecules at the hot-spots in a more efficient way. Extensive spectroscopic acquisitions, combined with 3D maps, allow to shade a more clear view on the performance of this plasmonic platform. In particular, the photodegration and the potential oxidation of biomolecules driven by the hot-electron/hot-holes produced by the rhodium nanoparticles will be reported.
format Preprint
id arxiv_https___arxiv_org_abs_2505_10216
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle UV-SERS monitoring of plasmons photodegradation of biomolecules on Aluminum platforms decorated with Rhodium nanoparticles
Zou, Yanqiu
Mattarozzi, Luca
Jin, Huaizhou
Ma, Qifei
Cattarin, Sandro
Weng, Shukun
Douaki, Ali
Lanzavecchia, German
Kołątaj, Karol
Corduri, Nicco
Johns, Ben
Maccaferri, Nicolò
Acuna, Guillermo
Zheng, Zhenrong
Jin, Shangzhong
Garoli, Denis
Applied Physics
In the search for novel nanostructured materials for UV plasmonics a limited number of choices can be done. Materials such as aluminum, rhodium, gallium and few others can be used. One of the most interesting application for UV plasmonics is Surface Enhanced Raman Spectroscopy. It can be extended to this spectral range to explore spectral properties of biomolecules that have only a small cross section in the visible spectral range. We have recently reported on a functional substrates based on nanoporous aluminum decorated with rhodium nanoparticles. This system showed an interesting behavior for UV excitation at 266 nm, with an unexpected decreasing Raman intensity for increasing rhodium nanoparticles concentrations. We proposed that this effect can be due to the difficult access to the hot spots for the molecules deposited via thermal evaporation. Here we extend this study exploring the performance of the system at another UV excitation wavelengths (325 nm) reporting on experimental results obtained using a deposition process that can bring the molecules at the hot-spots in a more efficient way. Extensive spectroscopic acquisitions, combined with 3D maps, allow to shade a more clear view on the performance of this plasmonic platform. In particular, the photodegration and the potential oxidation of biomolecules driven by the hot-electron/hot-holes produced by the rhodium nanoparticles will be reported.
title UV-SERS monitoring of plasmons photodegradation of biomolecules on Aluminum platforms decorated with Rhodium nanoparticles
topic Applied Physics
url https://arxiv.org/abs/2505.10216