Nashim Amtul, Mohanty Ritik, Ray Priyadarshi K, Parida K M
Centre for Nano Science and Nano Technology, Institute of Technical Education and Research, Siksha 'O' Anusandhan (Deemed to be University) Bhubaneswar 751019 India
RSC Adv. 2023 Aug 15;13(35):24536-24553. doi: 10.1039/d3ra04537d. eCollection 2023 Aug 11.
To meet the energy requirement of the modern era, supercapacitors are promising candidates for energy storage devices, which possess the potential to compete with the future battery technology. To accomplish this pivotal task, it is vital to choose electrode materials that have high power and energy density as well as superb electrochemical stability. For the past few years, the use of gallium-based materials for energy storage applications has attracted attention because of their excellent activity towards electrochemical energy storage applications despite the single oxidation state (, +3 which is redox inactive and does not contribute towards pseudo capacitance). Recently, research on gallium-based materials has started and will be continued further owing to the fact that gallium-based materials possess numerous excellent properties such as fast charge and discharge rate, high power density, long cycle life, stability over a wide range of temperatures, excellent electron velocity, superior chemical and physical stabilities and high voltage application capability, which make them a potential class of electrode materials for supercapacitors. The enhancement in the electrochemical performance upon the introduction of gallium into the system can make it a futuristic candidate for electrochemical energy storage devices. Herein, we systematically outline the synthesis and characterization of gallium-based materials and their composites as explored by esteemed researchers focusing only on their supercapacitive performance electrochemical techniques. For a better understanding, the underlying charge storage mechanism and identified characteristics are presented to give a crystal-clear idea about the field. In addition, the key challenges and impending perspectives of gallium-based electrodes for supercapacitor applications are debated.
为满足现代社会的能源需求,超级电容器作为储能设备的候选者颇具潜力,有望与未来的电池技术相竞争。要实现这一关键任务,选择具有高功率和能量密度以及出色电化学稳定性的电极材料至关重要。在过去几年中,基于镓的材料因其对电化学储能应用具有优异活性而受到关注,尽管其单一氧化态(+3,氧化还原惰性,对赝电容无贡献)。最近,对基于镓的材料的研究已经展开,并将因其具有众多优异性能而进一步持续,这些性能包括快速充放电速率、高功率密度、长循环寿命、在宽温度范围内的稳定性、出色的电子速度、卓越的化学和物理稳定性以及高电压应用能力,这使得它们成为超级电容器电极材料的潜在类别。将镓引入系统后电化学性能的提升使其成为电化学储能设备的未来候选者。在此,我们系统地概述了备受尊敬的研究人员所探索的基于镓的材料及其复合材料的合成与表征,仅关注其超级电容性能——电化学技术。为了更好地理解,还介绍了潜在的电荷存储机制和已确定的特性,以便对该领域有清晰的认识。此外,还讨论了基于镓的超级电容器电极的关键挑战和未来展望。