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碳基超级电容器的结构调控与性能提升:电极材料工程洞察

Structural Regulation and Performance Enhancement of Carbon-Based Supercapacitors: Insights into Electrode Material Engineering.

作者信息

Guan Lu, Li Dajin, Ji Shanshan, Wei Xiuzhi, Meng Fanxiao

机构信息

Department of Biological and Chemical Engineering, Jining Polytechnic, Jining 272037, China.

College of Chemical Engineering, China University of Petroleum (East China), Qingdao 266580, China.

出版信息

Materials (Basel). 2025 Jan 20;18(2):456. doi: 10.3390/ma18020456.

Abstract

The development of carbon-based supercapacitors is pivotal for advancing high energy and power density applications. This review provides a comprehensive analysis of structural regulation and performance enhancement strategies in carbon-based supercapacitors, focusing on electrode material engineering. Key areas explored include pore structure optimization, heteroatom doping, intrinsic defect engineering, and surface/interface modifications. These strategies significantly enhance electrochemical performance through increasing surface area, improving conductivity, facilitating charge transfer, introducing additional pseudocapacitive reactions, and optimizing the density of states at the Fermi level, among other mechanisms. After introducing these fundamental concepts, the review details various preparation methods and their effects on supercapacitor performance, highlighting the interplay between material structure and electrochemical properties. Challenges in scaling advanced fabrication techniques and ensuring the long-term stability of functionalized materials are discussed. Additionally, future research directions are proposed, emphasizing the development of cost-effective, scalable methods and interdisciplinary approaches to design next-generation supercapacitors, thereby meeting the growing demand for efficient and sustainable energy storage solutions.

摘要

碳基超级电容器的发展对于推进高能量和功率密度应用至关重要。本文综述对碳基超级电容器的结构调控和性能增强策略进行了全面分析,重点关注电极材料工程。所探讨的关键领域包括孔结构优化、杂原子掺杂、本征缺陷工程以及表面/界面修饰。这些策略通过增加表面积、提高电导率、促进电荷转移、引入额外的赝电容反应以及优化费米能级处的态密度等多种机制,显著提升了电化学性能。在介绍这些基本概念之后,本文综述详细阐述了各种制备方法及其对超级电容器性能的影响,突出了材料结构与电化学性能之间的相互作用。文中讨论了扩大先进制造技术规模以及确保功能化材料长期稳定性方面的挑战。此外,还提出了未来的研究方向,强调开发具有成本效益、可扩展的方法以及跨学科方法来设计下一代超级电容器,从而满足对高效和可持续储能解决方案不断增长的需求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2c7/11766752/35f72c7d54ef/materials-18-00456-g001.jpg

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