Efficient pyrite activating persulfate process for degradation of p -chloroaniline in aqueous systems: A mechanistic study

过硫酸盐 降级(电信) 水溶液 黄铁矿 化学 过程(计算) 环境化学 氧化法 高级氧化法 化学工程 无机化学 有机化学 矿物学 计算机科学 催化作用 工程类 操作系统 电信
作者
Yongqing Zhang,Hien Phuong Tran,Xiaoming Du,Imtyaz Hussain,Shaobin Huang,Shaoqi Zhou,William Wen
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:308: 1112-1119 被引量:104
标识
DOI:10.1016/j.cej.2016.09.104
摘要

In recent years, persulfate activation systems have received increasing attention due to their high oxidation reactivity when removing environmental pollutants. Pyrite, the most common metal sulfide on Earth’s surface, can supply abundant Fe2+ for persulfate activation. The role of the generated reactive oxygen species (ROS) in persulfate-pyrite systems however, is not fully understood. In this study, batch experiments were used to investigate p-chloroaniline (PCA) degradation by a pyrite-persulfate system. The effects of pyrite dosage, pH, temperature, air conditions (aerobic vs. anaerobic) and pyrite particle size on PCA degradation were examined. Radical detection was conducted using electron paramagnetic resonance (EPR) methods. Results from the EPR spectra indicated that PCA degradation was achieved by sulfate radical and hydroxyl radical oxidation. Aerobic conditions were more beneficial to PCA degradation than anaerobic conditions due to the generated superoxide radicals (O2−) that activated the persulfate to produce more sulfate radicals (SO4−). PCA degradation also increased with higher pyrite doses and under acidic conditions (pH 3.0 and 5.0). PCA was removed completely at pH 3.0 after 60 min. Temperature increase from 10 to 50 °C significantly promoted PCA degradation. These findings provide new understanding of the mechanism involved in pyrite activation of persulfate which can be used to improve PCA degradation by pyrite-persulfate systems.

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