过渡金属配位聚合物衍生材料在超级电容器中的应用:最新进展和未来展望。

IF 2.9 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Royal Society Open Science Pub Date : 2025-08-13 eCollection Date: 2025-08-01 DOI:10.1098/rsos.250919
Saifullahi Kabiru Sa'adu, Cheng Seong Khe, Muhammad Fadhlullah Abd Shukur, Kwok Feng Chong, Chin Wei Lai, Kok Yeow You, Nik Roselina Nik Roseley, Eslam Aboelazm
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引用次数: 0

摘要

随着对高效、可持续和可扩展的储能需求的不断增长,研究人员正在不断探索下一代超级电容器的创新材料。其中,过渡金属配位聚合物(TMCP)衍生材料因其高孔隙度、氧化还原活性和结构适应性而成为有希望的候选材料。这些材料具有巨大的能量存储潜力,但诸如低导电性、结构不稳定性和有限的电荷保留等挑战限制了它们的广泛应用。为了克服这些障碍,研究人员开发了碳化、磷酸化、硫化和氧化等转化策略,以提高TMCPs的导电性、稳定性和整体电化学性能。本文综述了tmcp衍生电极材料的最新进展,重点介绍了合成技术、结构工程和混合材料集成方面的关键进展,以提高电荷输运和长期耐用性。强调了绿色化学原理的结合,例如低温合成,使用无毒前体以及回收或减少有害副产品的策略,从而促进了环境友好型超级电容器的制造。此外,它还探讨了纳米结构设计和复合材料如何为高性能超级电容器打开新的可能性。它还通过融合理论见解和实验证据,为TMCPs在储能方面的未来提供了一个视角。密度泛函理论和新兴机器学习模型等理论框架是用来更好地理解氧化还原行为和驱动材料设计的其他方法。它解决了目前的问题,并为它们的有用应用提出了可行的未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transition metal coordination polymer-derived materials for supercapacitor applications: recent advances and future perspectives.

With the rising demand for efficient, sustainable and scalable energy storage, researchers are continuously exploring innovative materials for next-generation supercapacitors. Among these, transition metal coordination polymer (TMCP)-derived materials have emerged as promising candidates due to their high porosity, redox activity and structural adaptability. These materials offer significant potential for energy storage, but challenges like low electrical conductivity, structural instability and limited charge retention have restricted their widespread application. To overcome these hurdles, researchers have developed transformation strategies such as carbonization, phosphorization, sulfidation and oxide formation, enhancing the conductivity, stability and overall electrochemical performance of TMCPs. This review investigates the latest breakthroughs in TMCP-derived electrode materials, highlighting key advancements in synthesis techniques, structural engineering and hybrid material integration to improve charge transport and long-term durability. The incorporation of green chemistry principles, such as low-temperature synthesis, the use of non-toxic precursors, and strategies for recycling or reducing harmful byproducts, is highlighted, consequently promoting the fabrication of environmentally friendly supercapacitors. Furthermore, it explores how nanostructured designs and composite materials are unlocking new possibilities for high-performance supercapacitors. It also provides a perspective on the future of TMCPs in energy storage by fusing theoretical insights with experimental evidence. Theoretical frameworks like density functional theory and emerging machine learning models are other methods employed to better understand redox behaviour and drive material design. It addresses present issues and suggests viable future directions for their useful application.

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来源期刊
Royal Society Open Science
Royal Society Open Science Multidisciplinary-Multidisciplinary
CiteScore
6.00
自引率
0.00%
发文量
508
审稿时长
14 weeks
期刊介绍: Royal Society Open Science is a new open journal publishing high-quality original research across the entire range of science on the basis of objective peer-review. The journal covers the entire range of science and mathematics and will allow the Society to publish all the high-quality work it receives without the usual restrictions on scope, length or impact.
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