Magnetic field effects on electric behavior of [Fe(CN)6]3- at bare and membrane-coated electrodes

Sci Technol Adv Mater. 2008 May 20;9(2):024209. doi: 10.1088/1468-6996/9/2/024209. eCollection 2008 Apr.

Abstract

The cyclic voltammetric behavior of [Fe(CN)6]3- was investigated under homogeneous magnetic fields perpendicular to the electrode surface in order to determine the effects of magnetic fields on the distribution of an Fe2+/Fe3+ redox couple. The cathodic current was enhanced much more than the anodic current by a homogeneous magnetic field, suggesting that the concentration gradient of paramagnetic [Fe(CN)6]3- and diamagnetic [Fe(CN)6]4- formed at an electrode surface may also contribute to the asymmetric current. The apparent diffusion coefficient of the redox couple increased by over 30% in both cathodic and anodic processes upon applying a magnetic field. For a gold electrode coated with dioctadecyldimethylammonium, the application of a magnetic field perpendicular to the surface increased the peak-to-peak separation, and enhanced the asymmetric current. It is inferred that the application of a magnetic field promotes the electron-tunneling process by tilting chain molecules in the barrier membrane.

Keywords: [Fe(CN)6]3−; apparent diffusion coefficient; dioctadecyldimethylammonium chloride; electron-tunneling reaction; homogeneous magnetic field.