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Degradation of 4-Chlorophenol in Aqueous Solution by Sono-Electro-Fenton Process

机译:声电Fenton法降解水溶液中的4-氯苯酚

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摘要

Electro-Fenton (EF) and ultrasound radiation (US) have been of interest for the removal of chlorinated compounds from water. This study evaluates the effects of different parameters on sono-electro-Fenton (SEF) for degradation of 4-chlorophenol (4-CP) in an aqueous solution. This study uses pulsing US waves along with Pd-catalyzed EF to degrade contaminants in water while maintaining temperature. The usage of pulsing US waves along with Pd catalyzed EF to remove contaminants while maintaining temperature has not been reported previously. SEF ability to degrade 4-CP was compared with the performance of each process (EF and sonolysis) alone. Initial pH, current density, background electrolyte, Fe2+ concentration, Pd/Al2O3 catalyst concentration, US waves, and sonifier amplitude were optimized in a two electrode (Ti/mixed metal oxide or Ti/MMO) batch system. The degradation of 4-CP increased from 1.85% by US to 83% by EF to nearly >99.9% by coupled SEF. With US radiation under 70% amplitude and 1:10 ON/OFF ratio, the removal rate of 4-CP increased to 98% compared to 62% under EF alone within the first 120 min in the presence of 80 mg L−1 Fe2+, 16.94 mA cm−2 of current density, 1 g L−1 Pd/Al2O3 catalyst (10 mg Pd), and initial pH of 3. However, the degradation rate decreased after 120 min of treatment, and complete 4-CP removal was observed after 300 minutes. The sonolysis impacted the 4-CP removal under coupled SEF, mostly due to the contribution of mass transfer (micromixing), while radical formation was found to be absent under the conditions tested (20kHz). The pulsed US was found to increase the temperature by only 8.7°C, which was found not to impact the 4-CP volatilization or degradation. These results imply that low-level US frequency through pulses is a practical and efficient approach to support electro-Fenton reaction, improving reaction rates without the need for electrolyte cooling.
机译:电芬顿(EF)和超声辐射(US)对于去除水中的氯化物已引起关注。这项研究评估了不同参数对声电子Fenton(SEF)在水溶液中降解4-氯苯酚(4-CP)的影响。这项研究使用脉冲US波和Pd催化的EF来降解水中的污染物,同时保持温度。以前尚未报道过使用脉冲US波和Pd催化的EF来去除污染物,同时保持温度。将SEF降解4-CP的能力与每个过程(EF和超声波分解)的性能进行了比较。在两个电极(Ti /混合金属氧化物或Ti / MMO)中优化了初始pH,电流密度,本底电解质,Fe 2 + 浓度,Pd / Al2O3催化剂浓度,US波和超声波幅值。批处理系统。 4-CP的降解率从美国的1.85%增长到EF的83%,再到SEF耦合的近99.9%。在70%振幅和1:10开/关比的US辐射下,在存在80 mg L-的情况下,在最初的120分钟内,仅在EF下,4-CP的去除率增加到98%,而单独使用EF时,去除率是62%。 1 Fe 2 + ,电流密度16.94 mA cm −2 ,1 g L -1 Pd / Al2O3催化剂(10 mg Pd),初始pH为3。但是,处理120分钟后降解速率降低,并且在300分钟后观察到完全去除了4-CP。声波分解在耦合SEF下影响了4-CP的去除,主要是由于传质(微混合)的作用,而在测试条件下(20kHz)却发现自由基的形成是不存在的。发现脉冲US仅使温度升高8.7°C,发现这不会影响4-CP的挥发或降解。这些结果表明,通过脉冲的低频率US频率是一种支持电芬顿反应的实用且有效的方法,无需电解质冷却即可提高反应速率。

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