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Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review

Lithium metal batteries have achieved large-scale application, but still have limitations such as poor safety performance and high cost, and limited lithium resources limit the production of lithium batteries. The construction of these devices is also hampered by limited lithium supplies. Therefore,...

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Autores principales: Wang, Yanjie, Zhang, Yingjie, Cheng, Hongyu, Ni, Zhicong, Wang, Ying, Xia, Guanghui, Li, Xue, Zeng, Xiaoyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7999928/
https://www.ncbi.nlm.nih.gov/pubmed/33799697
http://dx.doi.org/10.3390/molecules26061535
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author Wang, Yanjie
Zhang, Yingjie
Cheng, Hongyu
Ni, Zhicong
Wang, Ying
Xia, Guanghui
Li, Xue
Zeng, Xiaoyuan
author_facet Wang, Yanjie
Zhang, Yingjie
Cheng, Hongyu
Ni, Zhicong
Wang, Ying
Xia, Guanghui
Li, Xue
Zeng, Xiaoyuan
author_sort Wang, Yanjie
collection PubMed
description Lithium metal batteries have achieved large-scale application, but still have limitations such as poor safety performance and high cost, and limited lithium resources limit the production of lithium batteries. The construction of these devices is also hampered by limited lithium supplies. Therefore, it is particularly important to find alternative metals for lithium replacement. Sodium has the properties of rich in content, low cost and ability to provide high voltage, which makes it an ideal substitute for lithium. Sulfur-based materials have attributes of high energy density, high theoretical specific capacity and are easily oxidized. They may be used as cathodes matched with sodium anodes to form a sodium-sulfur battery. Traditional sodium-sulfur batteries are used at a temperature of about 300 °C. In order to solve problems associated with flammability, explosiveness and energy loss caused by high-temperature use conditions, most research is now focused on the development of room temperature sodium-sulfur batteries. Regardless of safety performance or energy storage performance, room temperature sodium-sulfur batteries have great potential as next-generation secondary batteries. This article summarizes the working principle and existing problems for room temperature sodium-sulfur battery, and summarizes the methods necessary to solve key scientific problems to improve the comprehensive energy storage performance of sodium-sulfur battery from four aspects: cathode, anode, electrolyte and separator.
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spelling pubmed-79999282021-03-28 Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review Wang, Yanjie Zhang, Yingjie Cheng, Hongyu Ni, Zhicong Wang, Ying Xia, Guanghui Li, Xue Zeng, Xiaoyuan Molecules Review Lithium metal batteries have achieved large-scale application, but still have limitations such as poor safety performance and high cost, and limited lithium resources limit the production of lithium batteries. The construction of these devices is also hampered by limited lithium supplies. Therefore, it is particularly important to find alternative metals for lithium replacement. Sodium has the properties of rich in content, low cost and ability to provide high voltage, which makes it an ideal substitute for lithium. Sulfur-based materials have attributes of high energy density, high theoretical specific capacity and are easily oxidized. They may be used as cathodes matched with sodium anodes to form a sodium-sulfur battery. Traditional sodium-sulfur batteries are used at a temperature of about 300 °C. In order to solve problems associated with flammability, explosiveness and energy loss caused by high-temperature use conditions, most research is now focused on the development of room temperature sodium-sulfur batteries. Regardless of safety performance or energy storage performance, room temperature sodium-sulfur batteries have great potential as next-generation secondary batteries. This article summarizes the working principle and existing problems for room temperature sodium-sulfur battery, and summarizes the methods necessary to solve key scientific problems to improve the comprehensive energy storage performance of sodium-sulfur battery from four aspects: cathode, anode, electrolyte and separator. MDPI 2021-03-11 /pmc/articles/PMC7999928/ /pubmed/33799697 http://dx.doi.org/10.3390/molecules26061535 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Wang, Yanjie
Zhang, Yingjie
Cheng, Hongyu
Ni, Zhicong
Wang, Ying
Xia, Guanghui
Li, Xue
Zeng, Xiaoyuan
Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review
title Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review
title_full Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review
title_fullStr Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review
title_full_unstemmed Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review
title_short Research Progress toward Room Temperature Sodium Sulfur Batteries: A Review
title_sort research progress toward room temperature sodium sulfur batteries: a review
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7999928/
https://www.ncbi.nlm.nih.gov/pubmed/33799697
http://dx.doi.org/10.3390/molecules26061535
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