Adsorption dynamics and interfacial properties of thiol-based cobalt terpyridine monolayers
Spontaneously adsorbed monolayers of [Co(ttp-CH 2-SH) 2](PF 6) 2 have been formed on platinum microelectrodes by exposure to micromolar solutions of the complex in 0.1 M TBABF 4 in acetonitrile, ttp-CH 2-SH is 4′-( p-(thiolmethyl)-phenyl)-2,2′:6′,2″-terpyridine. Resonance Raman spectroscopy on rough...
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Veröffentlicht in: | Electrochimica acta 2007-08, Vol.52 (24), p.6692-6699 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Spontaneously adsorbed monolayers of [Co(ttp-CH
2-SH)
2](PF
6)
2 have been formed on platinum microelectrodes by exposure to micromolar solutions of the complex in 0.1
M TBABF
4 in acetonitrile, ttp-CH
2-SH is 4′-(
p-(thiolmethyl)-phenyl)-2,2′:6′,2″-terpyridine. Resonance Raman spectroscopy on roughened polycrystalline platinum macro electrodes show that the molecule undergoes adsorption through the sulphur atom onto the platinum surface. The monolayers show reversible and well defined cyclic voltammetry when switched between Co
2+ and Co
3+ forms, with a peak to peak splitting of 0.040
±
0.005
V up to 200
V
s
−1 and an FWHM of 0.138
±
0.010
V. Adsorption is
irreversible leading to the maximum surface coverage, 6.3
±
0.3
×
10
−11
mol
cm
−2 for 2.5
≤
[Co(ttp-CH
2-SH)
2]
≤
10
μM. The rate of monolayer formation appears to be controlled not by mass transport or interfacial binding but by surface diffusion of the complex. The surface diffusion coefficient is 5.5
±
1.1
×
10
−7
cm
2
s
−1 indicating that prior to formation of an equilibrated monolayer, the adsorbates have significant mobility on the surface. The electron transfer process across the monolayer–electrode interface has been probed by high speed chronoamperometry and the standard heterogeneous electron transfer rate constant,
k°, is approximately 3.06
±
0.03
×
10
4
s
−1. The reorganization energy is at least 18.5
kJ
mol
−1. |
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ISSN: | 0013-4686 1873-3859 |
DOI: | 10.1016/j.electacta.2007.04.096 |