过氧化氢
激进的
化学
氧化还原
氧气
羟基自由基
光化学
衰减
分解
动力学
臭氧
氧化物
动能
无机化学
环境化学
氢
碳酸氢盐
惰性
过氧化物
无定形固体
化学物理
化学反应
硼硅酸盐玻璃
振荡(细胞信号)
极限氧浓度
溶解
传质
化学动力学
降级(电信)
化学分解
析氧
清除
浸出(土壤学)
化学工程
布里格斯-劳舍尔反应
作者
Jing Zhang,Wenfeng Huang,Jun Liang,Chengpeng Yuan,Xiaoyun Xu,Ling Zhao,Hao Qiu,Xinde Cao
标识
DOI:10.1021/acs.est.5c16038
摘要
Oxygen perturbation in subsurface environments often induces redox fluctuations. Generally, the dissolved oxygen (DO) levels manifest as sharp oscillations or gradual variations depending on the mass transfer rate. Unlike sharp DO oscillations, the impact of gradual DO variations remains unclear. This study demonstrated that gradual DO variations (47.3%) enhanced 2,4-dichlorophenol (2,4-DCP) attenuation in iron-rich soils compared with sharp DO oscillations (31.2%). Hydroxyl radicals ( • OH) derived from surface-bound Fe(II) oxygenation were the primary oxidants in both systems. However, the gradual DO variation promoted surface-bound Fe(III)/Fe(II) cycling, favoring steady hydrogen peroxide (H 2 O 2 ) generation and its selective decomposition to • OH in kinetics, while the sharp DO oscillations showed declined H 2 O 2 generation and increased termination reactions producing nonradical species (e.g., Fe(IV)). Thermodynamic calculations confirmed that Fe(III)/Fe(II) cycling sustained the surface-bound Fe(II) reduction capacity by suppressing amorphous Fe(III) oxide formation under gradual DO variations, thereby providing an efficient thermodynamic force to maintain favorable reaction kinetics for • OH generation. These findings broaden the scope of natural contaminant attenuation, extending its relevance beyond narrow, sharp redox oscillation zones to wider regions governed by gradual DO fluctuations in the subsurface soils.
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