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Depollution of syringic acid aqueous solutions by electrochemical oxidation using high oxidation power anodes

机译:采用高氧化型阳极氧化通过电化学氧化的注射酸水溶液

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摘要

The anodic oxidation of syringic acid aqueous solutions has been comparatively studied using lead dioxide (PbO2) and boron-doped diamond (BDD) anodes in an electrolytic cell. The influence of several operating parameters such as current density and SA concentration on the performance of both systems has been investigated and the energy consumption has been also evaluated. Galvanostatic electrolyses always cause concomitant generation of hydroxyl radicals that lead to the SA destruction. The efficiency of the electrochemical process increases at lower current density and higher SA initial concentration while it decreases with the COD removal progress. The performance of the BDD anode is always better than that of PbO2, requiring shorter electrolysis time to reach overall mineralization, due to the high amounts of effective hydroxyl radicals generated from water oxidation at each anode, which lead to a higher current efficiency and a lower specific energy consumption when BDD anode was used. A possible reaction mechanism for SA oxidation with (OH)-O-center dot was proposed. The kinetics decay for the SA degradation on the PbO2 anode follows a pseudo-first order reaction with a rate constant of 8.3 10(-3) min(-1) for a j(app) value of 15 mA cm(-2).
机译:使用电解细胞中的二氧化铅(PbO2)和硼掺杂的金刚石(BDD)阳极在电解槽中使用阳极氧化阳极氧化。研究了诸如电流密度和SA浓度的若干操作参数的影响已经研究过,并且已经评估了能量消耗。电镀电解总始终引起导致SA破坏的羟基自由基。电化学过程的效率在较低的电流密度和更高的SA初始浓度下增加,同时通过COD去除进度降低。 BDD阳极的性能总是比PBO2的性能更好,需要更短的电解时间来达到整体矿化,这是由于每个阳极在水氧化的高量有效羟基自由基,这导致电流效率更高,更低使用BDD阳极时的具体能耗。提出了具有(OH)-O中心点的SA氧化的可能反应机制。对于PBO2阳极对SA降解的动力学衰减遵循初级第一顺序反应,其具有8.3 10(-3)min(-1)的速率常数,对于j(app)值为15ma cm(-2)。

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  • 来源
    《RSC Advances》 |2016年第76期|共9页
  • 作者单位

    Univ Sfax Ecole Natl Ingenieur Sfax Lab Electrochim &

    Environm BP 1173 Sfax 3038 Tunisia;

    Univ Sfax Ecole Natl Ingenieur Sfax Lab Electrochim &

    Environm BP 1173 Sfax 3038 Tunisia;

    Univ Sfax Ecole Natl Ingenieur Sfax Lab Electrochim &

    Environm BP 1173 Sfax 3038 Tunisia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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