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Effects of Sodium Vacancies and Concentrations in Na3SO4F Solid Electrolyte.
Wang, Xue; Xu, Xuele; Li, Yuxiang; Chen, Wenqian; Zhao, Guowei; Wang, Heng; Tang, Ya; Wu, Pengcheng; Tang, Liang.
Affiliation
  • Wang X; Key Laboratory of Organic Compound Pollution Control Engineering (MOE), School of Environmental and Chemical Engineering, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Xu X; Key Laboratory of Organic Compound Pollution Control Engineering (MOE), School of Environmental and Chemical Engineering, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Li Y; Department of Chemistry, College of Sciences, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Chen W; Key Laboratory of Organic Compound Pollution Control Engineering (MOE), School of Environmental and Chemical Engineering, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Zhao G; College of Chemistry and Chemical Engineering, Huanggang Normal University, Huanggang 438000, Hubei, China.
  • Wang H; Department of Chemistry, College of Sciences, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Tang Y; Department of Chemistry, College of Sciences, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Wu P; Department of Chemistry, College of Sciences, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
  • Tang L; Key Laboratory of Organic Compound Pollution Control Engineering (MOE), School of Environmental and Chemical Engineering, Shanghai University, No. 99, Shangda Road, Shanghai 200444, China.
ACS Omega ; 9(11): 13051-13058, 2024 Mar 19.
Article in En | MEDLINE | ID: mdl-38524466
ABSTRACT
The sodium-rich solid electrolyte, Na3SO4F (NSOF), holds promise for eco-friendly and resource-abundant energy storage. While the introduction of heterovalent dopants has the potential to enhance its suitability for battery applications by creating Na vacancies, the effect of vacancies and sodium concentrations on sodium conduction remains unclear. In this work, Mg2+ was introduced into Na+ sites in Na3SO4F, generating sodium vacancies with different contents by using solid-state synthesis method. Among the resulting materials, Na2.96Mg0.02SO4F exhibited an ionic conductivity that is two-order-of-magnitude higher than NSOF at 298 K. Notably, as the sodium concentration decreased, the ionic conductivity also declined, revealing an equilibrium between Na vacancies and concentrations. To further investigate the influence of sodium concentration, excess Na+ was introduced into NaMgSO4F, which inherently possesses a lower sodium content by using solid-state synthesis method. However, this adjustment only led to an approximately one-order-of-magnitude enhancement in optimal ionic conductivity at 298 K. Combined with an in situ X-ray diffraction analysis, our findings underscore the greater sensitivity of sodium conduction to variations in sodium vacancies. This study paves the way for the development of ultrafast sodium ion conductors, offering exciting prospects for advanced energy storage solutions.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Omega Year: 2024 Document type: Article Affiliation country: China Country of publication: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Omega Year: 2024 Document type: Article Affiliation country: China Country of publication: United States