Liao Peng, Al-Ani Yasir, Malik Ismael Zainab, Wu Xiaohui
1] School of Environmental Science and Engineering, Huazhong University of Science and Technology, Wuhan, P.R. China [2] State Key Lab of Biogeology and Environmental Geology, China University of Geosciences, Wuhan. 430074, P. R. China.
1] State Key Lab of Biogeology and Environmental Geology, China University of Geosciences, Wuhan. 430074, P. R. China [2] Faculty of Engineering, University of AL-Anbar, Al-Anbar Governorate, Iraq.
Sci Rep. 2015 Mar 18;5:9239. doi: 10.1038/srep09239.
A recently developed Pd-based electro-Fenton (E-Fenton) process enables efficient in situ remediation of organic contaminants in groundwater. In the process, H₂O₂, Fe(II), and acidic conditions (~pH 3) are produced in situ to facilitate the decontamination, but the role of ubiquitous natural organic matters (NOM) remain unclear. This study investigated the effect of Aldrich humic acid (HA) on the transformation of toluene by the Pd-based E-Fenton process. At pH 3 with 50 mA current, the presence of HA promoted the efficiency of toluene transformation, with pseudo-first-order rate constants increase from 0.01 to 0.016 as the HA concentration increases from 0 to 20 mg/L. The HA-enhanced toluene transformation was attributed to the accelerated thermal reduction of Fe(III) to Fe(II), which led to production of more hydroxyl radicals. The correlation of the rate constants of toluene transformation and HA decomposition validated hydroxyl radical (·OH) as the predominant reactive species for HA decomposition. The finding of this study highlighted that application of the novel Pd-based E-Fenton process in groundwater remediation may not be concerned by the fouling from humic substances.
最近开发的基于钯的电芬顿(E-Fenton)工艺能够有效地原位修复地下水中的有机污染物。在此过程中,原位产生过氧化氢、亚铁离子和酸性条件(pH约为3)以促进去污,但普遍存在的天然有机物(NOM)的作用仍不清楚。本研究考察了Aldrich腐殖酸(HA)对基于钯的E-Fenton工艺甲苯转化的影响。在pH为3、电流为50 mA的条件下,HA的存在提高了甲苯转化效率,随着HA浓度从0增加到20 mg/L,准一级反应速率常数从0.01增加到0.016。HA促进甲苯转化归因于加速了铁(III)热还原为铁(II),从而产生更多的羟基自由基。甲苯转化速率常数与HA分解的相关性验证了羟基自由基(·OH)是HA分解的主要活性物种。本研究结果突出表明,新型基于钯的E-Fenton工艺在地下水修复中的应用可能不受腐殖物质污染的影响。