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Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method

Sodium-ion batteries have important application prospects in large-scale energy storage due to their advantages, such as safety, affordability, and abundant resources. Prussian blue analogs (PBAs) have a stable and open framework structure, making them a very promising cathode material. However, hig...

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Autores principales: Dong, Xinyu, Wang, Haifeng, Wang, Jiawei, Wang, Qian, Wang, Hao, Hao, Wenhao, Lu, Fanghai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10649292/
https://www.ncbi.nlm.nih.gov/pubmed/37959684
http://dx.doi.org/10.3390/molecules28217267
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author Dong, Xinyu
Wang, Haifeng
Wang, Jiawei
Wang, Qian
Wang, Hao
Hao, Wenhao
Lu, Fanghai
author_facet Dong, Xinyu
Wang, Haifeng
Wang, Jiawei
Wang, Qian
Wang, Hao
Hao, Wenhao
Lu, Fanghai
author_sort Dong, Xinyu
collection PubMed
description Sodium-ion batteries have important application prospects in large-scale energy storage due to their advantages, such as safety, affordability, and abundant resources. Prussian blue analogs (PBAs) have a stable and open framework structure, making them a very promising cathode material. However, high-performance manganese-based Prussian blue cathode materials for sodium-ion batteries still suffer from significant challenges due to several key issues, such as a high number of vacancy defects and a high crystal water content. This article investigates the effects of the Fe-Mn molar ratio, Mn ion concentration, and reaction time on the electrochemical performance of MnHCF during the coprecipitation process. When Fe:Mn = 1:2, c(Mn(2+)) = 0.02 mol/L, and the reaction time is 12 h, the content of interstitial water molecules in the sample is low, and the Fe(CN)(6) defects are few. At 0.1 C, the prepared electrode has a high initial discharge specific capacity (121.9 mAh g(−1)), and after 100 cycles at 0.2 C, the capacity retention rate is 65% (~76.2 mAh g(−1)). Meanwhile, the sample electrode exhibits excellent reversibility. The discharge capacity can still be maintained at around 75% when the magnification is restored from 5 C to 0.1 C. The improvement in performance is mainly attributed to two aspects: On the one hand, reducing the Fe(CN)(6) defects and crystal water content is conducive to the diffusion and stable structure of N. On the other hand, reducing the reaction rate can significantly delay the crystallization of materials and optimize the nucleation process.
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spelling pubmed-106492922023-10-25 Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method Dong, Xinyu Wang, Haifeng Wang, Jiawei Wang, Qian Wang, Hao Hao, Wenhao Lu, Fanghai Molecules Article Sodium-ion batteries have important application prospects in large-scale energy storage due to their advantages, such as safety, affordability, and abundant resources. Prussian blue analogs (PBAs) have a stable and open framework structure, making them a very promising cathode material. However, high-performance manganese-based Prussian blue cathode materials for sodium-ion batteries still suffer from significant challenges due to several key issues, such as a high number of vacancy defects and a high crystal water content. This article investigates the effects of the Fe-Mn molar ratio, Mn ion concentration, and reaction time on the electrochemical performance of MnHCF during the coprecipitation process. When Fe:Mn = 1:2, c(Mn(2+)) = 0.02 mol/L, and the reaction time is 12 h, the content of interstitial water molecules in the sample is low, and the Fe(CN)(6) defects are few. At 0.1 C, the prepared electrode has a high initial discharge specific capacity (121.9 mAh g(−1)), and after 100 cycles at 0.2 C, the capacity retention rate is 65% (~76.2 mAh g(−1)). Meanwhile, the sample electrode exhibits excellent reversibility. The discharge capacity can still be maintained at around 75% when the magnification is restored from 5 C to 0.1 C. The improvement in performance is mainly attributed to two aspects: On the one hand, reducing the Fe(CN)(6) defects and crystal water content is conducive to the diffusion and stable structure of N. On the other hand, reducing the reaction rate can significantly delay the crystallization of materials and optimize the nucleation process. MDPI 2023-10-25 /pmc/articles/PMC10649292/ /pubmed/37959684 http://dx.doi.org/10.3390/molecules28217267 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
Dong, Xinyu
Wang, Haifeng
Wang, Jiawei
Wang, Qian
Wang, Hao
Hao, Wenhao
Lu, Fanghai
Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method
title Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method
title_full Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method
title_fullStr Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method
title_full_unstemmed Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method
title_short Preparation of Low-Defect Manganese-Based Prussian Blue Cathode Materials with Cubic Structure for Sodium-Ion Batteries via Coprecipitation Method
title_sort preparation of low-defect manganese-based prussian blue cathode materials with cubic structure for sodium-ion batteries via coprecipitation method
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10649292/
https://www.ncbi.nlm.nih.gov/pubmed/37959684
http://dx.doi.org/10.3390/molecules28217267
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