Cardiff University | Prifysgol Caerdydd ORCA
Online Research @ Cardiff 
WelshClear Cookie - decide language by browser settings

3D silver dendrites for single-molecule imaging by surface-enhanced Raman spectroscopy

Bandarenka, Hanna V. ORCID: https://orcid.org/0000-0003-4254-8261, Khinevich, Nadzeya V., Burko, Aliaksandr A., Redko, Sergey V., Zavatski, Siarhei A., Shapel, Uladzislau A., Mamatkulov, Kahramon Z., Vorobyeva, Maria Yu. and Arzumanyan, Grigory M. 2021. 3D silver dendrites for single-molecule imaging by surface-enhanced Raman spectroscopy. ChemNanoMat 7 (2) , pp. 141-149. 10.1002/cnma.202000521

Full text not available from this repository.

Abstract

Discovery of surface-enhanced Raman scattering (SERS) followed by evolution of optical systems and nanoengineering approaches has paved a path to detection of essential organic molecules on solid SERS-active substrates from solutions at concentrations attributed to single-molecule ones, i. e. below 10−15 M. However, in practical terms confident SERS-imaging of single molecules is still quite a challenge. In present work, we fabricated and comprehensively characterized tightly-packed 3D silver dendrites with prevalent chevron morphology that demonstrated ultrahigh sensitivity as SERS-active substrates resulted in 10−18 M detection limit. Using these substrates we achieved SERS-imaging of single 5-thio-2-nitrobenzoic acid (TNB) molecule released from the attomolar-concentrated solution of of 5,5′-dithio-bis-[2-nitrobenzoic acid] (DTNB), which is vital compound for chemical and biomedical analysis. In contrast to generally accepted belief about adsorption of only uniform monomolecular TNB layer on surface of silver nanostructures, we showed formation of a coating constituted by TNB layer and DTNB nanoclusters on the dendrites’ surface at 10−6–10−12 M DTNB concentrations confirmed by presence/absence of disulfide bonds signature in the SERS-spectra and by scanning electron microscopy. DTNB concentrations below 10−14 M resulted in adsorption of TNB molecules in separated spots on the surface of silver nanostructures.

Item Type: Article
Date Type: Publication
Status: Published
Schools: Schools > Physics and Astronomy
Publisher: Wiley
ISSN: 2199-692X
Last Modified: 07 Sep 2026 21:53
URI: https://orca.cardiff.ac.uk/id/eprint/188550

Actions (repository staff only)

Edit Item Edit Item