Relative Contributions of Dehalobacter and Zerovalent Iron in the Degradation of Chlorinated Methanes

二氯甲烷 脱氯作用 非生物成分 化学 氯仿 环境化学 零价铁 脱卤球绦虫 环境修复 三氯乙烯 富集培养 生物降解 有机化学 污染 生态学 细菌 生物 溶剂 共聚物 氯乙烯 吸附 遗传学 聚合物
作者
Matthew Lee,Eliza Wells,Yie Kuan Wong,Joanna Koenig,Lorenz Adrian,Hans H. Richnow,Mike Manefield
出处
期刊:Environmental Science & Technology [American Chemical Society]
卷期号:49 (7): 4481-4489 被引量:41
标识
DOI:10.1021/es5052364
摘要

The role of bacteria and zerovalent iron (Fe(0)) in the degradation of chlorinated solvents in subsurface environments is of interest to researchers and remediation practitioners alike. Fe(0) used in reactive iron barriers for groundwater remediation positively interacted with enrichment cultures containing Dehalobacter strains in the transformation of halogenated methanes. Chloroform transformation and dichloromethane formation was up to 8-fold faster and 14 times higher, respectively, when a Dehalobacter-containing enrichment culture was combined with Fe(0) compared with Fe(0) alone. The dichloromethane-fermenting culture transformed dichloromethane up to three times faster with Fe(0) compared to without. Compound-specific isotope analysis was employed to compare abiotic and biotic chloroform and dichloromethane degradation. The isotope enrichment factor for the abiotic chloroform/Fe(0) reaction was large at -29.4 ± 2.1‰, while that for chloroform respiration by Dehalobacter was minimal at -4.3 ± 0.45‰. The combined abiotic/biotic dechlorination was -8.3 ± 0.7‰, confirming the predominance of biotic dechlorination. The enrichment factor for dichloromethane fermentation was -15.5 ± 1.5‰; however, in the presence of Fe(0) the factor increased to -23.5 ± 2.1‰, suggesting multiple mechanisms were contributing to dichloromethane degradation. Together the results show that chlorinated methane-metabolizing organisms introduced into reactive iron barriers can have a significant impact on trichloromethane and dichloromethane degradation and that compound-specific isotope analysis can be employed to distinguish between the biotic and abiotic reactions involved.
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