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Development of a New Zero-Valent Iron Zeolite Material to Reduce Nitrate without Ammonium Release
Authors:Seunghak Lee  Kwanghun Lee  Sungsu Rhee  Junboum Park
Affiliation:1Postdoctoral Researcher, Water Environment and Remediation Research Center, Korea Institute of Science and Technology, P.O. Box 131, Cheongryang, Seoul, Korea. E-mail: seunghak@kist.re.kr
2Ph.D. Student, School of Civil, Urban, and Geosystem Engineering, Seoul National Univ., San 56-1, Shillim-dong, Kwanak-gu, Seoul, 151-742, Korea. E-mail: monkey@snu.ac.kr
3Ph.D. Student, School of Civil, Urban, and Geosystem Engineering, Seoul National Univ., San 56-1, Shillim-dong, Kwanak-gu, Seoul, 151-742, Korea. E-mail: haeury77@snu.ac.kr
4Associate Professor, School of Civil, Urban, and Geosystem Engineering, Seoul National Univ., San 56-1, Shillim-dong, Kwanak-gu, Seoul, 151-742, Korea (corresponding author). E-mail: junbpark@snu.ac.kr
Abstract:Previous studies have revealed that the application of zero-valent iron (ZVI) in reducing nitrate is limited by ammonium production and the requirement for adequate pH control. The current study focused on developing a new material potentially applicable in permeable reactive barriers, which can reduce nitrate without ammonium release under unbuffered pH. The new material, referred to as ZanF, is derived from zeolite modified by Fe(II), followed by borohydride reduction. The pseudo-first-order rate constant (kobs) of ZanF in the early period of nitrate reduction was 10 times higher than that of the ZVI used in this study. However, the kobs of ZanF decreased in the reaction period that followed. Even though both ZVI and ZanF produced ammonium as a product of nitrate reduction, ZanF removed it to below detection limits via adsorption, whereas ZVI did not remove it to any significant extent. ZanF maintained its high reactivity even under an initial pH of 6.2 without buffer. The higher ZanF/solution ratio increased the removal rate of ZanF as well as the removal efficiency.
Keywords:Nitrates  Zeolite  Barriers  Abatement and removal  
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