Singh Aditya Narayan, Meena Abhishek, Nam Kyung-Wan
Department of Energy and Materials Engineering, Dongguk University-Seoul, Seoul 04620, Republic of Korea.
Division of Physics and Semiconductor Science, Dongguk University-Seoul, Seoul 04620, Republic of Korea.
Gels. 2024 Feb 2;10(2):122. doi: 10.3390/gels10020122.
Gels are attracting materials for energy storage technologies. The strategic development of hydrogels with enhanced physicochemical properties, such as superior mechanical strength, flexibility, and charge transport capabilities, introduces novel prospects for advancing next-generation batteries, fuel cells, and supercapacitors. Through a refined comprehension of gelation chemistry, researchers have achieved notable progress in fabricating hydrogels endowed with stimuli-responsive, self-healing, and highly stretchable characteristics. This mini-review delineates the integration of hydrogels into batteries, fuel cells, and supercapacitors, showcasing compelling instances that underscore the versatility of hydrogels, including tailorable architectures, conductive nanostructures, 3D frameworks, and multifunctionalities. The ongoing application of creative and combinatorial approaches in functional hydrogel design is poised to yield materials with immense potential within the domain of energy storage.
凝胶是储能技术中颇具吸引力的材料。具有增强物理化学性质(如卓越机械强度、柔韧性和电荷传输能力)的水凝胶的战略发展,为推进下一代电池、燃料电池和超级电容器带来了新的前景。通过对凝胶化化学的深入理解,研究人员在制备具有刺激响应、自愈和高拉伸特性的水凝胶方面取得了显著进展。这篇微型综述阐述了水凝胶在电池、燃料电池和超级电容器中的集成,展示了令人信服的实例,突出了水凝胶的多功能性,包括可定制结构、导电纳米结构、三维框架和多功能性。在功能性水凝胶设计中不断应用创新和组合方法,有望在储能领域产生具有巨大潜力的材料。