Combining physical vapor deposition structuration with dealloying for the creation of a highly efficient SERS platform

Beilstein J Nanotechnol. 2023 Jan 11:14:83-94. doi: 10.3762/bjnano.14.10. eCollection 2023.

Abstract

Nanostructured noble metal thin films are highly studied for their interesting plasmonic properties. The latter can be effectively used for the detection of small and highly diluted molecules by the surface-enhanced Raman scattering (SERS) effect. Regardless of impressive detection limits achieved, synthesis complexity and the high cost of gold restrict its use in devices. Here, we report on a novel two-step approach that combines the deposition of a silver-aluminum thin film with dealloying to design and fabricate efficient SERS platforms. The magnetron sputtering technique was used for the deposition of the alloy thin film to be dealloyed. After dealloying, the resulting silver nanoporous structures revealed two degrees of porosity: macroporosity, associated to the initial alloy morphology, and nanoporosity, related to the dealloying step. The resulting nanoporous columnar structure was finely optimized by tuning deposition (i.e., the alloy chemical composition) and dealloying (i.e., dealloying media) parameters to reach the best SERS properties. These are reported for samples dealloyed in HCl and with 30 atom % of silver at the initial state with a detection limit down to 10-10 mol·L-1 for a solution of rhodamine B.

Keywords: SERS; dealloying; magnetron sputtering; nanoporous thin film; nanostructuring.

Grants and funding

AC thanks the FNRS for the financial support through the “VirusSurf” project No H.P064.20. CB thanks the Belgian Fund for Scientific Research under the FRFC contract EQP 40002995 (PHOTOFUN). CB is a Research Associate of the National Funds for Scientific Research (FRS-FNRS).