Recent Advances in Grating Coupled Surface Plasmon Resonance Technology

Author:

Murugan Divagar1,Tintelott Marcel1,Narayanan Madaboosi S.2,Vu Xuan‐Thang1,Kurkina Tetiana3,Rodriguez‐Emmenegger César456,Schwaneberg Ulrich3,Dostalek Jakub78,Ingebrandt Sven1,Pachauri Vivek1ORCID

Affiliation:

1. Institute of Materials in Electrical Engineering 1 RWTH Aachen University Sommerfeldstrasse 24 52074 Aachen Germany

2. Department of Biotechnology, Bhupat and Jyoti Mehta School of Biosciences Indian Institute of Technology Madras Chennai 600036 India

3. Institute of Biotechnology RWTH Aachen University Worringerweg 3 52074 Aachen Germany

4. DWI‐Leibniz Institute for Interactive Materials Forckenbeckstr. 50 52074 Aachen Germany

5. Catalan Institution for Research and Advanced Studies (ICREA) Passeig Lluís Companys 23 Barcelona 08010 Spain

6. Institute for Bioengineering of Catalonia (IBEC) Carrer de Baldiri Reixac, 10, 12 Barcelona 08028 Spain

7. FZU‐Institute of Physics Czech Academy of Sciences Prague 18221 Czech Republic

8. Laboratory for Life Sciences and Technology (LiST) Faculty of Medicine and Dentistry Danube Private University Krems 3500 Austria

Abstract

AbstractSurface plasmon resonance (SPR) is a key technique in developing sensor platforms for clinical diagnostics, drug discovery, food quality, and environmental monitoring applications. While prism‐coupled (Kretschmann) SPR remains a “gold‐standard” for laboratory work‐flows due to easier fabrication, handling and high through put, other configurations such as grating‐coupled SPR (GC‐SPR) and wave‐guide mode SPR are yet to fulfil their technology potential. This work evaluates the technical aspects influencing the performance of GC‐SPR and reviews recent progress in the fabrication of such platforms. In principle, the GC‐SPR involves the illumination of the plasmonic metal film with periodic gratings to excite the surface plasmons (SP) via diffraction‐based phase matching. The real performance of the GC‐SPR is, however, heavily influenced by the topography of the grating structures produced via top‐down lithography techniques. This review discusses latest in approaches to achieve consistent plasmonic gratings with uniform features and periodicity over a large scale and explores the choice of plasmon‐active and substrate material for enhanced performance. The review also provides insights into the different GC‐SPR measurement configurations and highlights on opportunities with their potential applications as biosensors with translational capabilities.

Publisher

Wiley

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