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Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System

Radiolysis of chemical agents occurs during the decontamination of nuclear power plants. The γ-ray irradiation tests of the N(2)H(4)–Cu(+)–HNO(3) solution, a decontamination agent, were performed to investigate the effect of Cu(+) ion and HNO(3) on N(2)H(4) decomposition using a Co-60 high-dose irra...

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Autores principales: Chang, Naon, Won, Huijun, Park, Sangyoon, Eun, Heechul, Kim, Seonbyeong, Seo, Bumkyung, Kim, Yongsoo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8303140/
https://www.ncbi.nlm.nih.gov/pubmed/34298995
http://dx.doi.org/10.3390/ijms22147376
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author Chang, Naon
Won, Huijun
Park, Sangyoon
Eun, Heechul
Kim, Seonbyeong
Seo, Bumkyung
Kim, Yongsoo
author_facet Chang, Naon
Won, Huijun
Park, Sangyoon
Eun, Heechul
Kim, Seonbyeong
Seo, Bumkyung
Kim, Yongsoo
author_sort Chang, Naon
collection PubMed
description Radiolysis of chemical agents occurs during the decontamination of nuclear power plants. The γ-ray irradiation tests of the N(2)H(4)–Cu(+)–HNO(3) solution, a decontamination agent, were performed to investigate the effect of Cu(+) ion and HNO(3) on N(2)H(4) decomposition using a Co-60 high-dose irradiator. After the irradiation, the residues of N(2)H(4) decomposition were analyzed by Ultraviolet-visible (UV) spectroscopy. NH(4)(+) ions generated from N(2)H(4) radiolysis were analyzed by ion chromatography. Based on the results, the decomposition mechanism of N(2)H(4) in the N(2)H(4)–Cu(+)–HNO(3) solution under γ-ray irradiation condition was derived. Cu(+) ions form Cu(+)N(2)H(4) complexes with N(2)H(4), and then N(2)H(4) is decomposed into intermediates. H(+) ions and H(●) radicals generated from the reaction between H(+) ion and e(aq)(−) increased the N(2)H(4) decomposition reaction. NO(3)(−) ions promoted the N(2)H(4) decomposition by providing additional reaction paths: (1) the reaction between NO(3)(−) ions and N(2)H(4)(●+), and (2) the reaction between NO(●) radical, which is the radiolysis product of NO(3)(−) ion, and N(2)H(5)(+). Finally, the radiolytic decomposition mechanism of N(2)H(4) obtained in the N(2)H(4)–Cu(+)–HNO(3) was schematically suggested.
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spelling pubmed-83031402021-07-25 Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System Chang, Naon Won, Huijun Park, Sangyoon Eun, Heechul Kim, Seonbyeong Seo, Bumkyung Kim, Yongsoo Int J Mol Sci Article Radiolysis of chemical agents occurs during the decontamination of nuclear power plants. The γ-ray irradiation tests of the N(2)H(4)–Cu(+)–HNO(3) solution, a decontamination agent, were performed to investigate the effect of Cu(+) ion and HNO(3) on N(2)H(4) decomposition using a Co-60 high-dose irradiator. After the irradiation, the residues of N(2)H(4) decomposition were analyzed by Ultraviolet-visible (UV) spectroscopy. NH(4)(+) ions generated from N(2)H(4) radiolysis were analyzed by ion chromatography. Based on the results, the decomposition mechanism of N(2)H(4) in the N(2)H(4)–Cu(+)–HNO(3) solution under γ-ray irradiation condition was derived. Cu(+) ions form Cu(+)N(2)H(4) complexes with N(2)H(4), and then N(2)H(4) is decomposed into intermediates. H(+) ions and H(●) radicals generated from the reaction between H(+) ion and e(aq)(−) increased the N(2)H(4) decomposition reaction. NO(3)(−) ions promoted the N(2)H(4) decomposition by providing additional reaction paths: (1) the reaction between NO(3)(−) ions and N(2)H(4)(●+), and (2) the reaction between NO(●) radical, which is the radiolysis product of NO(3)(−) ion, and N(2)H(5)(+). Finally, the radiolytic decomposition mechanism of N(2)H(4) obtained in the N(2)H(4)–Cu(+)–HNO(3) was schematically suggested. MDPI 2021-07-09 /pmc/articles/PMC8303140/ /pubmed/34298995 http://dx.doi.org/10.3390/ijms22147376 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chang, Naon
Won, Huijun
Park, Sangyoon
Eun, Heechul
Kim, Seonbyeong
Seo, Bumkyung
Kim, Yongsoo
Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System
title Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System
title_full Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System
title_fullStr Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System
title_full_unstemmed Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System
title_short Hydrazine Radiolysis by Gamma-Ray in the N(2)H(4)–Cu(+)–HNO(3) System
title_sort hydrazine radiolysis by gamma-ray in the n(2)h(4)–cu(+)–hno(3) system
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8303140/
https://www.ncbi.nlm.nih.gov/pubmed/34298995
http://dx.doi.org/10.3390/ijms22147376
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