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eISSN: 2581-9615 || CODEN (USA): WJARAI || Impact Factor: 8.2 || ISSN Approved Journal

Ion-Chemistry-Driven Performance of Biocompatible Inorganic Salts for Aqueous Energy Storage

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  • Ion-Chemistry-Driven Performance of Biocompatible Inorganic Salts for Aqueous Energy Storage

Prince Agbenyo *, Kingdom Akugri, Lovelyn Keteku and Marious Akugri

Independent Researchers.

Research Article

World Journal of Advanced Research and Reviews, 2026, 29(02), 026-032

Article DOI: 10.30574/wjarr.2026.29.2.0285

DOI url: https://doi.org/10.30574/wjarr.2026.29.2.0285

Received on 18 December 2025; revised on 30 January 2026; accepted on 02 February 2026

The discovery of safe, sustainable, and biocompatible electrolytes is crucial in the development of aqueous energy storage devices. Natural inorganic salts have huge potential to replace standard electrolytes. These salts are nontoxic, environmentally compatible, and readily available in large quantities. However, minimal focus has been given to the electrochemical properties of these salts in the past. Salt chemistry is critical in the energy storage domain. This research article is primarily focused on the analysis of four naturally occurring salts: sodium chloride, potassium chloride, magnesium chloride, and calcium chloride in terms of using these salts for the development of aqueous electrolyte solutions in the field of energy storage devices. The article discusses the ionic conductivity of these salts as a way to determine each salt's suitability for electrical conduction in aqueous form. It further analyzes their charge-discharge characteristics towards determining and comparing thehir suitability for energy storage. A detailed analysis of the advantages and limitation of using monovalent or divalent salt chemistry in the aqueous-based electrolyte solution is critically analyzed as part of the results discussion.

Inorganic salts; Energy storage; Electrolytes; Biocompatibility; Charge transfer

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Prince Agbenyo, Kingdom Akugri, Lovelyn Keteku and Marious Akugri. Ion-Chemistry-Driven Performance of Biocompatible Inorganic Salts for Aqueous Energy Storage. World Journal of Advanced Research and Reviews, 2026, 29(02), 026-032. Article DOI: https://doi.org/10.30574/wjarr.2026.29.2.0285.

Copyright © 2026 Author(s) retain the copyright of this article. This article is published under the terms of the Creative Commons Attribution Liscense 4.0

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