Freezing-induced activation of the binary chloride-Oxone system to free chlorine and its application in water treatment
Cited 2 time in
Cited 2 time in
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Title
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Freezing-induced activation of the binary chloride-Oxone system to free chlorine and its application in water treatment
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Other Titles
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동결을 이용한 염소활성화를 통한 수처리 공정 개발연구
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Authors
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Kim, Kitae
Nhat Thi Hong Le
Anh Quoc Khuong Nguyen
안용윤
Kim, Bomi
신관용
최원용
김정원
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Issue Date
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2022
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Citation
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Kim, Kitae, et al. 2022. "Freezing-induced activation of the binary chloride-Oxone system to free chlorine and its application in water treatment". CHEMICAL ENGINEERING JOURNAL, 428(1): 1-9.
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Abstract
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Accelerated chemical reactions in frozen solutions can be applied in the degradation of organic pollutants in water. Herein we propose a novel freezing system that enables the degradation of various organic compounds in a frozen solution. Although the degradation of 4-chlorophenol (4-CP) by Oxone as the sole primary oxidant did not take place in aqueous solutions (25 °C) regardless of the presence of chloride ions (Cl?, micromolar levels) and only took place to a minor extent in frozen solutions (?20 °C) in the absence of Cl?, the addition of Cl? (micromolar levels) to the freezing/Oxone system significantly accelerated the degradation of 4-CP. Various analytical characterizations and pH measurements of the frozen solution suggested that the enhanced degradation of 4-CP in the freezing/Oxone/Cl? system could be because Cl?, Oxone, and protons are concentrated in the liquid brine upon freezing. This process subsequently facilitates the formation of hypochlorous acid (HOCl) as a secondary oxidant. The positive effect of Cl? was observed under widely varying conditions (i.e., [Cl?] = 25?1000 μM, pHi = 3?11, and freezing temperature = from ?10 to ?30 °C), and the freezing/Oxone/Cl? system described herein successfully degraded all 12 tested organic pollutants. In addition, outdoor freezing experiments carried out on winter days confirmed the successful performance of the freezing/Oxone/Cl? system without the requirement for electrical energy.
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URI
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https://repository.kopri.re.kr/handle/201206/13821
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DOI
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http://dx.doi.org/10.1016/j.cej.2021.131134
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Type
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Article
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Station
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기타()
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Indexed
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SCIE
- Appears in Collections
- 2022-2022, Investigation of ice microstructure properties for developing low-temperature purification and environment/energy materials (22-22) / Kim, Kitae (PE22120)
2021-2021, Development of potential candidates as antibiotics based on polar genetic resources (21-21) / Lee, Jun Hyuck (PM21030)
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