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The application of metal-organic frameworks and their derivatives for lithium-ion capacitors
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作者 ZHAO Sha-sha ZHANG Xiong +5 位作者 LI Chen an ya-bin HU Tao WANG Kai SUN Xian-zhong MA Yan-wei 《新型炭材料(中英文)》 SCIE EI CAS CSCD 北大核心 2024年第5期872-895,共24页
There is an urgent need for lithium-ion capacitors(LICs)that have both high energy and high power densities to meet the continuously growing energy storage demands.LICs effectively balance the high energy density of t... There is an urgent need for lithium-ion capacitors(LICs)that have both high energy and high power densities to meet the continuously growing energy storage demands.LICs effectively balance the high energy density of traditional rechargeable batteries with the superior power density and long life of supercapacitors(SCs).Nevertheless,the development of LICs is still hampered by limited kinetic processes and capacity mismatch between the cathode and anode.Metal-organic frameworks(MOFs)and their derivatives have received significant attention because of their extensive specific surface area,different pore structures and topologies,and customizable functional sites,making them compelling candidate materials for achieving high-performance LICs.MOF-derived carbons,known for their exceptional electronic conductivity and large surface area,provide improved charge storage and rapid ion transport.MOF-derived transition metal oxides contribute to high specific capacities and improved electrochemical stability.Additionally,MOF-derived metal compounds/carbons provide combined effects that increase both the capacitive and Faradaic reactions,leading to a superior overall performance.The review begins with an overview of the fundamental principles of LICs,followed by an exploration of synthesis strategies and ligand selection for MOF-based composite materials.It then analyzes the advantages of original MOFs and their derived materials,such as carbon materials and metal compounds,in enhancing LIC performance.Finally,the review discusses the major challenges faced by MOFs and their derivatives in LIC applications and offers future research directions and recommendations. 展开更多
关键词 Lithium-ion capacitors MOFS Transition metal oxide Energy density Power density
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锂离子电容器在新能源领域应用展望 被引量:19
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作者 张晓虎 孙现众 +4 位作者 张熊 安亚斌 王凯 韦统振 马衍伟 《电工电能新技术》 CSCD 北大核心 2020年第11期48-58,共11页
锂离子电容器(LIC)作为一种新型电化学储能技术,具有超高功率密度、较高能量密度、长寿命、高安全、全寿命周期运行成本低、温度范围宽、易回收再利用等特点,成本介于锂离子电池(LIB)和双电层电容器(EDLC)之间,具有巨大的市场应用价值... 锂离子电容器(LIC)作为一种新型电化学储能技术,具有超高功率密度、较高能量密度、长寿命、高安全、全寿命周期运行成本低、温度范围宽、易回收再利用等特点,成本介于锂离子电池(LIB)和双电层电容器(EDLC)之间,具有巨大的市场应用价值和竞争优势。本文阐述了锂离子电容器结构、工作原理、技术特点以及发展历程,基于锂离子电容器作为功率型储能器件既可以单独使用,同时也可以与其他储能器件(如锂离子电池、燃料电池、铅蓄电池等)组成混合储能系统使用,本文重点分析了锂离子在微电网、电力调频、风电变桨系统、城市轨道交通、新能源汽车等新能源领域的应用,最后对锂离子电容器未来技术发展及应用前景做了展望。 展开更多
关键词 锂离子电容器 电化学储能技术 功率型储能器件 混合储能系统 新能源领域
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