Electrochemical oxidation of chlorinated phenols

Citation
Jd. Rodgers et al., Electrochemical oxidation of chlorinated phenols, ENV SCI TEC, 33(9), 1999, pp. 1453-1457
Citations number
19
Categorie Soggetti
Environment/Ecology,"Environmental Engineering & Energy
Journal title
ENVIRONMENTAL SCIENCE & TECHNOLOGY
ISSN journal
0013936X → ACNP
Volume
33
Issue
9
Year of publication
1999
Pages
1453 - 1457
Database
ISI
SICI code
0013-936X(19990501)33:9<1453:EOOCP>2.0.ZU;2-O
Abstract
Electrochemical oxidation has been proposed as a remediation method for chl orinated phenols but is hampered by anode fouling. In this work we explore the mechanism of anode fouling by chlorinated phenols, compare structure vs reactivity for phenols differing in the extent of chlorination, and relate the efficiency of oxidation to the mechanism of oxidation at different ele ctrode types. Linear sweep voltammograms at a Pt anode at several concentra tions, sweep rates, and pH were interpreted in terms of deposition of oligo mers on the anode surface. Chronopotentiometry at Pt showed that the oxidat ion potentials of the chlorinated phenol congeners ranged from +0.6 to +1.3 V vs SHE in the pH range 2-12; four electrons are transferred for mono- an d trichlorophenols and two for pentachlorophenol. Passivation increased in parallel with the uncompensated resistance of the solution and occurred onl y at potentials at which water is oxidized, suggesting that the formation o f the oligomer film involves attack of hydroxyl radicals on electrochemical ly oxidized substrate. Seven chlorinated phenols were electrolyzed at PbO2, SnO2, and IrO2 anodes. Relative reactivities of congeners were anode-depen dent, due to different mechanisms of oxidation: direct electron-transfer ox idation at PbO2 and hydroxyl radical attack at SnO2 and IrO2. At current de nsities <0.1 mA cm(-2), current efficiencies >50% could be achieved with 4- chlorophenol at all three anodes.