Zia Jannatun, Tejaswini M S S R
Department of Chemistry, School of Engineering, Siddhartha Academy of Higher Education Deemed to be University Vijayawada A. P. India
Department of Chemistry, School of Applied Sciences and Humanities, Vignan's Foundation for Science, Technology and Research Vadlamudi Guntur A. P. India.
RSC Adv. 2025 Mar 25;15(12):9055-9080. doi: 10.1039/d5ra00528k. eCollection 2025 Mar 21.
As the demand for efficient and high-performance energy storage devices continues to rise, supercapacitors have emerged as a promising technology due to their rapid charge-discharge capabilities and long cycle life. Among the various strategies to enhance supercapacitor performance, binary and ternary transition metal-based composites have garnered significant attention. These composites offer a unique approach by combining multiple transition metals, which synergistically enhance electrochemical performance through both physical and chemical charge storage mechanisms. This review provides an in-depth analysis of the latest research on binary and ternary transition metal composites, discussing their electrochemical properties, synthesis methods, and performance metrics in supercapacitor applications. The combination of different transition metals in composite materials as energy storage electrodes allows for a broader voltage window, increased energy density, enhanced power density, and improved cycling stability. Additionally, we discuss the structural and morphological features of these composite materials, such as porosity, surface area, and conductivity, which play critical roles in determining overall performance. Furthermore, the review highlights the challenges faced in optimizing these composites, including material scalability, cost-effectiveness, and long-term stability. The paper also outlines future research directions, emphasizing the potential of binary and ternary transition metal-based composites in supercapacitor applications, providing insights into potential avenues for the next generation of high-performance energy storage systems. This review thus provides valuable insights into both the current state and future potential of these composite materials in high-performance supercapacitors.
随着对高效和高性能储能设备的需求持续增长,超级电容器因其快速充放电能力和长循环寿命而成为一种有前景的技术。在提高超级电容器性能的各种策略中,二元和三元过渡金属基复合材料受到了广泛关注。这些复合材料通过结合多种过渡金属提供了一种独特的方法,通过物理和化学电荷存储机制协同增强电化学性能。本文综述对二元和三元过渡金属复合材料的最新研究进行了深入分析,讨论了它们在超级电容器应用中的电化学性质、合成方法和性能指标。在复合材料中使用不同的过渡金属作为储能电极,可以实现更宽的电压窗口、更高的能量密度、增强的功率密度和更好的循环稳定性。此外,我们还讨论了这些复合材料的结构和形态特征,如孔隙率、表面积和导电性,它们在决定整体性能方面起着关键作用。此外,综述强调了优化这些复合材料所面临的挑战,包括材料可扩展性、成本效益和长期稳定性。本文还概述了未来的研究方向,强调了二元和三元过渡金属基复合材料在超级电容器应用中的潜力,为下一代高性能储能系统的潜在途径提供了见解。因此,本文综述为这些复合材料在高性能超级电容器中的现状和未来潜力提供了有价值的见解。