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Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte

Using ternary molten salt with a molar ratio of NaCl:KCl:CsCl = 30:24.5:45.5 and ZrCl(4) as raw materials to prepare a NaCl-KCl-CsCl-Cs(2)ZrCl(6) composite electrolyte. Characterizing by XRD, ICP-AES, optical microscopy and SEM-EDS, the results showed that when the molar ratio of CsCl:ZrCl(4) ≥ 2:1,...

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Autores principales: Zou, Wenzhen, Wu, Yanke, Wang, Lijun, Yan, Guoqing, Ma, Zhaohui, Zhang, Jiandong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10057540/
https://www.ncbi.nlm.nih.gov/pubmed/36984150
http://dx.doi.org/10.3390/ma16062270
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author Zou, Wenzhen
Wu, Yanke
Wang, Lijun
Yan, Guoqing
Ma, Zhaohui
Zhang, Jiandong
author_facet Zou, Wenzhen
Wu, Yanke
Wang, Lijun
Yan, Guoqing
Ma, Zhaohui
Zhang, Jiandong
author_sort Zou, Wenzhen
collection PubMed
description Using ternary molten salt with a molar ratio of NaCl:KCl:CsCl = 30:24.5:45.5 and ZrCl(4) as raw materials to prepare a NaCl-KCl-CsCl-Cs(2)ZrCl(6) composite electrolyte. Characterizing by XRD, ICP-AES, optical microscopy and SEM-EDS, the results showed that when the molar ratio of CsCl:ZrCl(4) ≥ 2:1, Cs(2)ZrCl(6) was generated according to the stoichiometric reaction; when the molar ratio of CsCl:ZrCl(4) < 2:1, CsCl in molten salt was almost completely converted to Cs(2)ZrCl(6), and there was a ZrCl(4) phase. When the molar ratio of CsCl:ZrCl(4) = 2:1, with the increase of the reaction temperature and reaction time, the concentration of zirconium ions first increased and then decreased. The optimized preparation process conditions are: the 2:1 molar ratio of CsCl to ZrCl(4) in NaCl-KCl-CsCl, 500 °C of reaction temperature of and 3 h of reaction time. Under this condition, 99.68% conversion rate from ZrCl(4) to Cs(2)ZrCl(6) was obtained. Taking the prepared NaCl-KCl-CsCl-Cs(2)ZrCl(6) composite electrolyte as a raw material, a preliminary study of molten salt electrolytic refining zirconium was carried out, and a refined zirconium product with a dendrite of 10.61 mm was obtained under the conditions of a zirconium ions concentration of 5%, an electrolysis temperature of 750 °C, a current density of 0.1 A/cm(2), and an electrolysis time of 9 h, indicating that the composite electrolyte can be used for the electrolytic refining of zirconium.
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spelling pubmed-100575402023-03-30 Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte Zou, Wenzhen Wu, Yanke Wang, Lijun Yan, Guoqing Ma, Zhaohui Zhang, Jiandong Materials (Basel) Article Using ternary molten salt with a molar ratio of NaCl:KCl:CsCl = 30:24.5:45.5 and ZrCl(4) as raw materials to prepare a NaCl-KCl-CsCl-Cs(2)ZrCl(6) composite electrolyte. Characterizing by XRD, ICP-AES, optical microscopy and SEM-EDS, the results showed that when the molar ratio of CsCl:ZrCl(4) ≥ 2:1, Cs(2)ZrCl(6) was generated according to the stoichiometric reaction; when the molar ratio of CsCl:ZrCl(4) < 2:1, CsCl in molten salt was almost completely converted to Cs(2)ZrCl(6), and there was a ZrCl(4) phase. When the molar ratio of CsCl:ZrCl(4) = 2:1, with the increase of the reaction temperature and reaction time, the concentration of zirconium ions first increased and then decreased. The optimized preparation process conditions are: the 2:1 molar ratio of CsCl to ZrCl(4) in NaCl-KCl-CsCl, 500 °C of reaction temperature of and 3 h of reaction time. Under this condition, 99.68% conversion rate from ZrCl(4) to Cs(2)ZrCl(6) was obtained. Taking the prepared NaCl-KCl-CsCl-Cs(2)ZrCl(6) composite electrolyte as a raw material, a preliminary study of molten salt electrolytic refining zirconium was carried out, and a refined zirconium product with a dendrite of 10.61 mm was obtained under the conditions of a zirconium ions concentration of 5%, an electrolysis temperature of 750 °C, a current density of 0.1 A/cm(2), and an electrolysis time of 9 h, indicating that the composite electrolyte can be used for the electrolytic refining of zirconium. MDPI 2023-03-11 /pmc/articles/PMC10057540/ /pubmed/36984150 http://dx.doi.org/10.3390/ma16062270 Text en © 2023 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
Zou, Wenzhen
Wu, Yanke
Wang, Lijun
Yan, Guoqing
Ma, Zhaohui
Zhang, Jiandong
Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte
title Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte
title_full Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte
title_fullStr Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte
title_full_unstemmed Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte
title_short Preparation and Application of a NaCl-KCl-CsCl-Cs(2)ZrCl(6) Composite Electrolyte
title_sort preparation and application of a nacl-kcl-cscl-cs(2)zrcl(6) composite electrolyte
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10057540/
https://www.ncbi.nlm.nih.gov/pubmed/36984150
http://dx.doi.org/10.3390/ma16062270
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