超级电容器
材料科学
纳米技术
Boosting(机器学习)
离子
密闭空间
电极
表面改性
空间电荷
离子键合
空格(标点符号)
计算机科学
离子运输机
大规模运输
数码产品
理论(学习稳定性)
电容器
导电体
电容
航空航天工程
钥匙(锁)
纳米孔
作者
Pengfei Li,Shilin Zhang,Jieming Wang,Siyu Liu,Xue Kang,Hui Shao,Jian Qi
出处
期刊:Small
[Wiley]
日期:2026-02-11
卷期号:22 (13): e72799-e72799
摘要
High-performance electrode materials are key to advancing supercapacitor technology. Hollow micro- and nanostructured materials with confined space effects act as precise "nanoreactors." These materials effectively regulate ion transport kinetics, enhance interfacial interactions, and stabilize the electrode/electrolyte interface, achieving rapid ion storage and efficient diffusion. This review systematically summarizes the latest advances in the application of such materials in supercapacitors. We first elucidate the definition, classification, and preparation methods of hollow micro-nano structures, then explore the advantages of confined space effects in ion restriction and selection, reaction kinetics optimization, and other aspects. Furthermore, structural design and functionalization modifications can further enhance specific capacitance, rate performance, and cycling stability. We also discuss the physicochemical mechanisms involved in promoting charge storage, suppressing ion aggregation, and mitigating volume changes. Notably, machine learning has shown great potential in guiding the precise and controllable synthesis of complex hollow micro/nano structures, providing new insights and strategies for material design. Despite potential, challenges like precise synthesis, mass production of complex structures, in-depth ionic behavior study in confined spaces, and long-term stability remain. Finally, we outline future research directions to offer theoretical and technical guidance for designing next-generation high-performance supercapacitor electrodes based on confinement effects.
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