Sensitive and high laser damage threshold substrates for surface‐enhanced Raman scattering based on gold and silver nanoparticles

Author:

Mayr Felix1ORCID,Zimmerleiter Robert2ORCID,Farias Patricia M. A.3,Bednorz Mateusz1ORCID,Salinas Yolanda4ORCID,Galembek André5ORCID,Cardozo Olavo D. F.6,Wielend Dominik1ORCID,Oliveira Dyego7,Milani Raquel7,Brito‐Silva Tania M.8ORCID,Brandstetter Markus2,Padrón‐Hernández Eduardo7ORCID,Burgholzer Peter2ORCID,Stingl Andreas6,Scharber Markus C.1ORCID,Sariciftci Niyazi Serdar1ORCID

Affiliation:

1. Linz Institute for Organic Solar Cells (LIOS), Institute of Physical Chemistry, Johannes Kepler University Linz Linz Austria

2. RECENDT – Research Center for Non‐Destructive Testing GmbH Linz Austria

3. Departamento de Biofísica e Radiobiologia Federal University of Pernambuco, Cidade Universitaria Recife Brazil

4. Institute of Polymer Chemistry (ICP) Johannes Kepler University Linz Linz Austria

5. Departamento de Química Fundamental Federal University of Pernambuco Recife Brazil

6. Phornano Holding GmbH Korneuburg Austria

7. Departamento de Física Federal University of Pernambuco Recife Brazil

8. Departamento de Ciencias Exatas Santa Cruz State University Ilheus Brazil

Abstract

AbstractSurface‐enhanced Raman scattering (SERS) is a sensitive and fast technique for sensing applications such as chemical trace analysis. However, a successful, high‐throughput practical implementation necessitates the availability of simple‐to‐use and economical SERS substrates. In this work, we present a robust, reproducible, flexible and yet cost‐effective SERS substrate suited for the sensitive detection of analytes at near‐infrared (NIR) excitation wavelengths. The fabrication is based on a simple dropcast deposition of silver or gold nanomaterials on an aluminium foil support, making the design suitable for mass production. The fabricated SERS substrates can withstand very high average Raman laser power of up to 400 mW in the NIR wavelength range while maintaining a linear signal response of the analyte. This enables a combined high signal enhancement potential provided by (i) the field enhancement via the localized surface plasmon resonance introduced by the noble metal nanomaterials and (ii) additional enhancement proportional to an increase of the applicable Raman laser power without causing the thermal decomposition of the analyte. The application of the SERS substrates for the trace detection of melamine and rhodamine 6G is demonstrated, which shows limits of detection smaller than 0.1 ppm and analytical enhancement factors on the order of 104 as compared to bare aluminium foil.

Publisher

Wiley

Subject

General Medicine

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