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原位生长无粘结剂金属有机框架及其衍生物作为超级电容器独立电极的路线图

Road Map for In Situ Grown Binder-Free MOFs and Their Derivatives as Freestanding Electrodes for Supercapacitors.

作者信息

Dennyson Savariraj Antonysamy, Justin Raj Chellan, Kale Amol Marotrao, Kim Byung Chul

机构信息

Department of Advanced Components and Materials Engineering, Sunchon National University, 255, Jungang-ro, Suncheon-si, Jeollanamdo, 57922, Republic of Korea.

Physics Division, School of Advanced Sciences, Vellore Institute of Technology (VIT), Chennai Campus, Chennai, Tamil Nadu, 600 127, India.

出版信息

Small. 2023 May;19(20):e2207713. doi: 10.1002/smll.202207713. Epub 2023 Feb 17.

DOI:10.1002/smll.202207713
PMID:36799137
Abstract

Among several electrocatalysts for energy storage purposes including supercapacitors, metal-organic frameworks (MOFs), and their derivatives have spurred wide spread interest owing to their structural merits, multifariousness with tailor-made functionalities and tunable pore sizes. The electrochemical performance of supercapacitors can be further enhanced using in situ grown MOFs and their derivatives, eliminating the role of insulating binders whose "dead mass" contribution hampers the device capability otherwise. The expulsion of binders not only ensures better adhesion of catalyst material with the current collector but also facilitates the transport of electron and electrolyte ions and remedy cycle performance deterioration with better chemical stability. This review systematically summarizes different kinds of metal-ligand combinations for in situ grown MOFs and derivatives, preparation techniques, modification strategies, properties, and charge transport mechanisms as freestanding electrode materials in determining the performance of supercapacitors. In the end, the review also highlights potential promises, challenges, and state-of-the-art advancement in the rational design of electrodes to overcome the bottlenecks and to improve the capability of MOFs in energy storage applications.

摘要

在包括超级电容器在内的多种用于能量存储的电催化剂中,金属有机框架材料(MOFs)及其衍生物因其结构优点、功能多样且可定制以及孔径可调而引起了广泛关注。使用原位生长的MOFs及其衍生物可以进一步提高超级电容器的电化学性能,消除绝缘粘合剂的作用,否则其“无效质量”贡献会阻碍器件性能。去除粘合剂不仅能确保催化剂材料与集流体更好地粘附,还能促进电子和电解质离子的传输,并通过更好的化学稳定性改善循环性能的恶化。本文综述系统地总结了原位生长的MOFs及其衍生物的不同金属-配体组合、制备技术、改性策略、性质以及作为独立电极材料在决定超级电容器性能时的电荷传输机制。最后,综述还强调了在合理设计电极以克服瓶颈并提高MOFs在能量存储应用中的性能方面的潜在前景、挑战和最新进展。

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