On the Role of the Cathode for the Electro-Oxidation of Perfluorooctanoic Acid

全氟辛酸 阴极 化学 电化学 阳极 电解质 激进的 无机化学 降级(电信) 阴极保护 分子 电极 有机化学 物理化学 电信 计算机科学
作者
Alicia L. Garcia-Costa,A. Savall,Juan A. Zazo,J.A. Casas,Karine Groenen Serrano
出处
期刊:Catalysts [Multidisciplinary Digital Publishing Institute]
卷期号:10 (8): 902-902 被引量:16
标识
DOI:10.3390/catal10080902
摘要

Perfluorooctanoic acid (PFOA), C7F15COOH, has been widely employed over the past fifty years, causing an environmental problem because of its dispersion and low biodegradability. Furthermore, the high stability of this molecule, conferred by the high strength of the C-F bond makes it very difficult to remove. In this work, electrochemical techniques are applied for PFOA degradation in order to study the influence of the cathode on defluorination. For this purpose, boron-doped diamond (BDD), Pt, Zr, and stainless steel have been tested as cathodes working with BDD anode at low electrolyte concentration (3.5 mM) to degrade PFOA at 100 mg/L. Among these cathodic materials, Pt improves the defluorination reaction. The electro-degradation of a PFOA molecule starts by a direct exchange of one electron at the anode and then follows a complex mechanism involving reaction with hydroxyl radicals and adsorbed hydrogen on the cathode. It is assumed that Pt acts as an electrocatalyst, enhancing PFOA defluorination by the reduction reaction of perfluorinated carbonyl intermediates on the cathode. The defluorinated intermediates are then more easily oxidized by HO• radicals. Hence, high mineralization (xTOC: 76.1%) and defluorination degrees (xF−: 58.6%) were reached with Pt working at current density j = 7.9 mA/cm2. This BDD-Pt system reaches a higher efficiency in terms of defluorination for a given electrical charge than previous works reported in literature. Influence of the electrolyte composition and initial pH are also explored.
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