Dense Arrays of Nanohelices: Raman Scattering from Achiral Molecules Reveals the Near‐Field Enhancements at Chiral Metasurfaces

Author:

Jones Robin R.1,Miksch Cornelia2,Kwon Hyunah2,Pothoven Coosje3,Rusimova Kristina R.1,Kamp Maarten3,Gong Kedong4,Zhang Liwu4,Batten Tim5,Smith Brian5,Silhanek Alejandro V.6,Fischer Peer27,Wolverson Daniel1,Valev Ventsislav K.18ORCID

Affiliation:

1. Centre for Photonics and Photonic Materials and Centre for Nanoscience and Nanotechnology Department of Physics University of Bath Claverton Down BA2 7AY UK

2. Max Planck Institute for Intelligent Systems Heisenbergstraße 3 70569 Stuttgart Germany

3. VSPARTICLE Molengraaffsingel 10 JD Delft 2629 The Netherlands

4. Department of Environmental Science and Engineering Fudan University Shanghai 200433 China

5. Renishaw plc New Mills, Kingswood Wotton‐under‐Edge GL12 8JR UK

6. Experimental Physics of Nanostructured Materials Q‐MAT CESAM University of Liége Sart Tilman B‐4000 Belgium

7. Institute of Physical Chemistry University of Stuttgart Pfaffenwaldring 55 70569 Stuttgart Germany

8. Centre for Therapeutic Innovation University of Bath Bath BA2 7AY UK

Abstract

AbstractAgainst the background of the current healthcare and climate emergencies, surface enhanced Raman scattering (SERS) is becoming a highly topical technique for identifying and fingerprinting molecules, e.g., within viruses, bacteria, drugs, and atmospheric aerosols. Crucial for SERS is the need for substrates with strong and reproducible enhancements of the Raman signal over large areas and with a low fabrication cost. Here, dense arrays of plasmonic nanohelices (≈100 nm in length), which are of interest for many advanced nanophotonics applications, are investigated, and they are shown to present excellent SERS properties. As an illustration, two new ways to probe near‐field enhancement generated with circular polarization at chiral metasurfaces are presented, first using the Raman spectra of achiral molecules (crystal violet) and second using a single, element‐specific, achiral molecular vibrational mode (i.e., a single Raman peak). The nanohelices can be fabricated over large areas at a low cost and they provide strong, robust and uniform Raman enhancement. It is anticipated that these advanced materials will find broad applications in surface enhanced Raman spectroscopies and material science.

Funder

Engineering and Physical Sciences Research Council

Royal Society

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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