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Elsevier, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, (149), p. 196-200

DOI: 10.1016/j.saa.2015.04.092

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Surface enhanced Raman scattering of new acridine based fluorophore adsorbed on silver electrode

Journal article published in 2015 by Elena V. Solovyeva ORCID, Liubov A. Myund, Anna S. Denisova ORCID
This paper is available in a repository.
This paper is available in a repository.

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Abstract

4,5-bis(N,N-di(2-hydroxyethyl)iminomethyl)acridine (BHIA) is a new acridine based fluoroionophore and a highly-selective sensor for cadmium ion. The direct interaction of the aromatic nitrogen atom with a surface is impossible since there are bulky substituents in the 4,5- positions of the acridine fragment. Nevertheless BHIA molecule shows a reliable SERS spectrum while adsorbed on a silver electrode. The analysis of SERS spectra pH dependence reveals that BHIA species adsorbed on a surface can exist in both nonprotonated and protonated forms. The adsorption of BHIA from alkaline solution is accompanied by carbonaceous species formation at the surface. The intensity of such “carbon bands” turned out to be related with the supporting electrolyte (KCl) concentration. Upon lowering the electrode potential the SERS spectra of BHIA do not undergo changes but the intensity of bands decreases. This indicates that the adsorption mechanism on the silver surface is realized via aromatic system of acridine fragment. In case of such an adsorption mechanism the chelate fragment of the BHIA molecule is capable of interaction with the solution components. Addition of Cd2+ ions to a system containing BHIA adsorbed on a silver electrode in equilibrium with the solution leads to the formation of BHIA/Cd2+ complex which desorption causes the loss of SERS signal.