Bp. Nelson et al., Control of surface and zeta potentials on nanoporous TiO2 films by potential-determining and specifically adsorbed ions, LANGMUIR, 16(15), 2000, pp. 6094-6101
The effect of a specifically adsorbed ion, phosphate, on the electrochemica
l response and adsorption properties of nanocrystalline TiO2 is examined. P
hosphate is known to affect the zeta potential, as measured by electrophore
tic mobility, by changing the charge of the oxide surface. The adsorption o
f a cationic probe molecule, thionine, onto TiO2 was monitored with an in-s
itu cell using UV-vis spectroscopy. The adsorption of the cationic dye mole
cule was found to be governed by changes in the zeta potential, whether the
zeta potential was modified by pH or by changes in phosphate concentration
. Onset potential measurements were used to estimate the flat-band potentia
l of a Ti/TiO2 electrode. The flat-band potential results for the electrode
showed a nearly Nernstian response to changes in the pH for a broad pH ran
ge. The addition of phosphate had no effect on the onset potential or on th
e shape of the photocurrent/potential curve. Flat-band potentials determine
d by Mott-Schottky analysis in the absence of phosphate were Nernstian only
for pH 3-7, matching the pH dependence of the electrophoretic mobility res
ults. With the addition of phosphate, impedance spectroscopy results showed
additional space charge capacitance, peaking at potentials 150 mV positive
of the flat-band potential. UV irradiation also resulted in an additional
space charge capacitance. For both cases, the additional space charge capac
itance was accompanied by a decrease in the resistance of the electrode, as
shown in Nyquist plots. The change in film conductivity is believed to aff
ect the space charge layer capacitance. Similarly, a decrease in film resis
tance was also seen with lower pH values. Currently, this change in TiO2 fi
lm conductivity with surface acidity is being investigated in our laborator
y for application in fuel cell electrolytes.