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Zero-valent iron (ZVI, Fe0) can effectively reduce a variety of chlorinated hydrocarbons. However, ZVI is incapable of dechlorinating 1,2-dichloroethane (1,2-DCA), a commonly found contaminant in groundwater, and the existing ZVI modification methods have little effect on this predicament. In this study, we prepared ZVI composites modified with Fe–N4 coordination structure (Fe0@FeNC), which exhibited outstanding dechlorination performance toward 1,2-DCA. Fe0@FeNC (1 g/L) can degrade 94% of 1,2-DCA (10 mg/L) within 37 days, with an ethene selectivity of nearly 100%, whereas nanoscale ZVI (nZVI) or even Pd-doped nZVI and sulfidated ZVI cannot degrade 1,2-DCA. The results from X-ray diffraction patterns and Mössbauer spectra confirmed the presence of Fe0 and Fe–N4 coordination structure in the Fe0@FeNC, which were proven to be the electron donor and dechlorination active center for 1,2-DCA dechlorination, respectively. Theoretical calculation reveals that the Fe–N4 coordination structure can reduce the free energy required for 1,2-DCA reduction, thus allowing 1,2-DCA to utilize electrons provided by Fe0 to achieve dechlorination. These findings can guide the design of ZVI-based materials to achieve in situ abiotic remediation of 1,2-DCA-contaminated groundwater.
Cai et al. (Thu,) studied this question.
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