Innovative Organic Electrolytes for Enhanced Energy Density and Performance in Supercapacitors

Energy Storage Pub Date : 2025-01-20 DOI:10.1002/est2.70117
Vivek Chaudhry, Joginder Singh, Ahmed A. Ibrahim, Sadia Ameen, Ahmad Umar, M. S. Akhtar
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Abstract

Supercapacitors, known for their high-power energy storage capabilities, have garnered significant attention due to their rapid charge–discharge cycles and extended life span. To expand their application in fields such as electric vehicles, renewable energy systems, and portable electronic devices, the development of advanced electrolytes that can boost energy density, power density, and overall performance is crucial. This study introduces a novel electrolyte formulation comprising lithium chloride in ethylene glycol and Magnesium Acetate in methanol. These formulations are designed to address existing challenges and enhance supercapacitor efficiency. The study reports impressive specific capacitance values (Csp = 582, 360, and 224 F/g), specific energy (SE = 323, 200, and 124 Wh/kg), and specific power (SP = 11 628, 7200, and 1322 W/kg) for lithium chloride, magnesium acetate, and zinc chloride electrolytes, respectively. These findings open new avenues for developing optimal and sustainable energy storage solutions in an increasingly electrified world. Continued research in this domain is expected to unlock the full potential of supercapacitors, contributing to a cleaner and more energy-efficient future.

超级电容器以其大功率储能能力而闻名,因其快速充放电循环和使用寿命长而备受关注。为了扩大其在电动汽车、可再生能源系统和便携式电子设备等领域的应用,开发可提高能量密度、功率密度和整体性能的先进电解质至关重要。本研究介绍了一种新型电解质配方,包括乙二醇中的氯化锂和甲醇中的醋酸镁。这些配方旨在应对现有挑战,提高超级电容器的效率。研究报告显示,氯化锂、醋酸镁和氯化锌电解质的比电容值(Csp = 582、360 和 224 F/g)、比能量(SE = 323、200 和 124 Wh/kg)和比功率(SP = 11 628、7200 和 1322 W/kg)分别令人印象深刻。这些发现为在日益电气化的世界中开发最佳和可持续的储能解决方案开辟了新途径。该领域的持续研究有望释放超级电容器的全部潜能,为实现更清洁、更节能的未来做出贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.90
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0.00%
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