反硝化
化学
环境化学
氧化还原
亚硝酸盐
硝酸盐
电子转移
非生物成分
电子供体
质子耦合电子转移
电子传输链
电子受体
电子顺磁共振波谱
水流
氢
氧气
分析化学(期刊)
无机化学
水处理
反硝化细菌
作者
Shaofu Huang,Man Chen,Youming Diao,Zihan Xie,Hao Lin,Lingyan Huang,Jiahuan Tang,Raymond Jianxiong Zeng,S. Kevin Zhou
标识
DOI:10.1021/acs.est.5c15738
摘要
Streaming potential generation through water flow in porous media represents an ancient and ubiquitous geophysical phenomenon. For centuries, this process has been regarded as merely a process of charge redistribution without involving any redox reactions. By using NO 3 – reduction as a model reaction, this study demonstrated for the first time that water flow drives abiotic denitrification associated with streaming potential generation. The nitrate (NO 3 – ) reduction rate reached 10.6 μmol·L –1 ·d –1, which is comparable to that of FeS-driven chemical NO 3 – reduction (75.0–380 μmol·L –1 ·d –1 ) and significantly higher than that of photochemistry-driven NO 3 – reduction (0.1–1 μmol·L –1 ·d –1 ). Through monitoring of nitrogenous products and 15 NO 3 – isotopic experiments, we showed that NO 3 – was selectively reduced to nitrogen (99%) via nitrite and nitrous oxide, confirming a denitrification process. Electron paramagnetic resonance (ESR) spectroscopy using DMPO as the probe detected the generation of hydrogen radicals (H•), which served as the reducing force for NO 3 – reduction. Using TEMPO as the electron probe, linear electron production was observed with an electron efficiency of 6.3% for NO 3 – denitrification. Moreover, H 2 18 O isotope experiments demonstrated that water oxidation is the ultimate electron source for NO 3 – reduction, indicating a chemical-free NO 3 – reduction process. An electric field strength of approximately 10 6 V/cm was detected using surface-enhanced Raman scattering, providing evidence of a strong interfacial electric field (IEF)-induced electron transfer process during water flow. This work reveals ubiquitous but long-overlooked redox reactions associated with streaming potentials. Water-flow-driven denitrification also highlights a newly identified abiotic NO 3 – elimination pathway, suggesting potent chemical-free NO 3 – remediation strategies.
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