Supercapacitors: An Efficient Way for Energy Storage Application
Суперконденсаторы: эффективный способ хранения энергии
2024-02-01
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electrochemical characterizationelectrolytesenergy storagenanostructured electrode materialssupercapacitors
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Abstract (AI)
To date, batteries are the most widely used energy storage devices, fulfilling the requirements of different industrial and consumer applications. However, the efficient use of renewable energy sources and the emergence of wearable electronics has created the need for new requirements such as high-speed energy delivery, faster charge-discharge speeds, longer lifetimes, and reusability. This leads to the need for supercapacitors, which can be a good complement to batteries. However, one of their drawbacks is their lower energy storage capability, which has triggered worldwide research efforts to increase their energy density. With the introduction of novel nanostructured materials, hierarchical pore structures, hybrid devices combining these materials, and unconventional electrolytes, significant developments have been reported in the literature. This paper reviews the short history of the evolution of supercapacitors and the fundamental aspects of supercapacitors, positioning them among other energy-storage systems. The main electrochemical measurement methods used to characterize their energy storage features are discussed with a focus on their specific characteristics and limitations. High importance is given to the integral components of the supercapacitor cell, particularly to the electrode materials and the different types of electrolytes that determine the performance of the supercapacitor device (e.g., storage capability, power output, cycling stability). Current directions in the development of electrode materials, including carbonaceous forms, transition metal-based compounds, conducting polymers, and novel materials are discussed. The synergy between the electrode material and the current collector is a key factor, as well as the fine-tuning of the electrode material and electrolyte.
Key Findings
1
Electrochemical characterization methods have distinct features and limitations that must be considered when evaluating supercapacitor energy-storage properties.
2
Electrode materials and electrolytes critically determine storage capability, power output, and cycling stability.
3
Lower energy storage capability remains a major supercapacitor drawback, motivating efforts to increase energy density.
4
Nanostructured materials, hierarchical pore architectures, hybrid devices, and unconventional electrolytes have substantially advanced supercapacitor performance.
5
Optimizing the synergy between electrode materials and current collectors, together with electrode-electrolyte matching, is central to improving device performance.
6
Supercapacitors complement batteries by providing high-speed energy delivery, rapid charge-discharge, longer lifetimes, and reusability.
Research Object
Supercapacitor energy-storage devices and their integral components, particularly electrode materials and electrolytes
Research Subject
Electrochemical energy-storage performance, especially energy density, storage capability, power output, cycling stability, and the effects of nanostructured electrodes, hierarchical pores, hybrid architectures, electrolytes, and electrode–current-collector synergy
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2024-02-01
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