Khadiga M. Kelani , Badr A. El-Zeany , Eman S. Elzanfaly , Michael K. Halim , Ahmed Emad F. Abbas , Ahmed S. Saad
{"title":"创新的基于聚合物的,小型化的固态参比电极:电位和电化学电源的可持续解决方案","authors":"Khadiga M. Kelani , Badr A. El-Zeany , Eman S. Elzanfaly , Michael K. Halim , Ahmed Emad F. Abbas , Ahmed S. Saad","doi":"10.1016/j.jpowsour.2025.236945","DOIUrl":null,"url":null,"abstract":"<div><div>The rapid development of miniaturized energy storage systems, such as batteries and fuel cells, requires compact, stable, and liquid-junction-free reference electrodes for precise electrochemical characterization. This study presents a novel all-solid-state reference electrode (S-RE) based on polymeric ion exchangers embedded in a carbon-paste matrix, offering a sustainable solution for potentiometric and electrochemical power sources. The S-RE eliminates liquid junctions, providing superior stability, broad electrolyte compatibility, and ease of miniaturization, making it ideal for next-generation energy applications.</div><div>The polymeric ion exchangers in the S-RE ensure low solubility, high ion-exchange capacity, and strong mechanical and pH stability, making it compatible with various electrolytes. Electrochemical evaluations were performed in acidic, alkaline, neutral, and non-aqueous media, confirming the electrode's reliability. The optimized design, incorporating a cation-exchanger and an anion-exchanger, enhances stability and long-term performance in extreme environments.</div><div>Benchmarking against hydrogen reference electrodes and Hg/HgO electrodes validated its suitability for energy storage applications. Additionally, the S-RE demonstrated statistical equivalence to Ag/AgCl electrodes in the potentiometric determination of isoxsuprine (ISX). Its miniaturized design supports sample volumes as low as 500 μL, while its cost-effective fabrication makes it scalable for industrial applications, positioning the S-RE as a promising alternative for electrochemical diagnostics in energy storage and sensing technologies.</div></div>","PeriodicalId":377,"journal":{"name":"Journal of Power Sources","volume":"642 ","pages":"Article 236945"},"PeriodicalIF":7.9000,"publicationDate":"2025-04-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Innovative polymer-based, miniaturized solid-state reference electrode: A sustainable solution for potentiometric and electrochemical power sources\",\"authors\":\"Khadiga M. Kelani , Badr A. El-Zeany , Eman S. Elzanfaly , Michael K. Halim , Ahmed Emad F. Abbas , Ahmed S. Saad\",\"doi\":\"10.1016/j.jpowsour.2025.236945\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>The rapid development of miniaturized energy storage systems, such as batteries and fuel cells, requires compact, stable, and liquid-junction-free reference electrodes for precise electrochemical characterization. This study presents a novel all-solid-state reference electrode (S-RE) based on polymeric ion exchangers embedded in a carbon-paste matrix, offering a sustainable solution for potentiometric and electrochemical power sources. The S-RE eliminates liquid junctions, providing superior stability, broad electrolyte compatibility, and ease of miniaturization, making it ideal for next-generation energy applications.</div><div>The polymeric ion exchangers in the S-RE ensure low solubility, high ion-exchange capacity, and strong mechanical and pH stability, making it compatible with various electrolytes. Electrochemical evaluations were performed in acidic, alkaline, neutral, and non-aqueous media, confirming the electrode's reliability. The optimized design, incorporating a cation-exchanger and an anion-exchanger, enhances stability and long-term performance in extreme environments.</div><div>Benchmarking against hydrogen reference electrodes and Hg/HgO electrodes validated its suitability for energy storage applications. Additionally, the S-RE demonstrated statistical equivalence to Ag/AgCl electrodes in the potentiometric determination of isoxsuprine (ISX). 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Innovative polymer-based, miniaturized solid-state reference electrode: A sustainable solution for potentiometric and electrochemical power sources
The rapid development of miniaturized energy storage systems, such as batteries and fuel cells, requires compact, stable, and liquid-junction-free reference electrodes for precise electrochemical characterization. This study presents a novel all-solid-state reference electrode (S-RE) based on polymeric ion exchangers embedded in a carbon-paste matrix, offering a sustainable solution for potentiometric and electrochemical power sources. The S-RE eliminates liquid junctions, providing superior stability, broad electrolyte compatibility, and ease of miniaturization, making it ideal for next-generation energy applications.
The polymeric ion exchangers in the S-RE ensure low solubility, high ion-exchange capacity, and strong mechanical and pH stability, making it compatible with various electrolytes. Electrochemical evaluations were performed in acidic, alkaline, neutral, and non-aqueous media, confirming the electrode's reliability. The optimized design, incorporating a cation-exchanger and an anion-exchanger, enhances stability and long-term performance in extreme environments.
Benchmarking against hydrogen reference electrodes and Hg/HgO electrodes validated its suitability for energy storage applications. Additionally, the S-RE demonstrated statistical equivalence to Ag/AgCl electrodes in the potentiometric determination of isoxsuprine (ISX). Its miniaturized design supports sample volumes as low as 500 μL, while its cost-effective fabrication makes it scalable for industrial applications, positioning the S-RE as a promising alternative for electrochemical diagnostics in energy storage and sensing technologies.
期刊介绍:
The Journal of Power Sources is a publication catering to researchers and technologists interested in various aspects of the science, technology, and applications of electrochemical power sources. It covers original research and reviews on primary and secondary batteries, fuel cells, supercapacitors, and photo-electrochemical cells.
Topics considered include the research, development and applications of nanomaterials and novel componentry for these devices. Examples of applications of these electrochemical power sources include:
• Portable electronics
• Electric and Hybrid Electric Vehicles
• Uninterruptible Power Supply (UPS) systems
• Storage of renewable energy
• Satellites and deep space probes
• Boats and ships, drones and aircrafts
• Wearable energy storage systems