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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Rational design of three-dimensional graphene encapsulated core-shell FeS@carbon nanocomposite as a flexible high-performance anode for sodium-ion batteries
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Rational design of three-dimensional graphene encapsulated core-shell FeS@carbon nanocomposite as a flexible high-performance anode for sodium-ion batteries

机译:三维石墨烯封装核心壳FES碳纳米复合材料的理性设计为钠离子电池的柔性高性能阳极

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The development of high-performance electrochemical energy storage systems is highly dependent on the synergistical structural design of electrode materials and whole electrodes with appropriate compositions. Here we create a novel flexible three-dimensional graphene (3DG) hybrid electrode with a core-shell FeS@ carbon (FeS@ C) nanocomposite encapsulated within 3DG by one-step thermal transformation of the deliberately designed 3DG wrapped metal-organic framework (3DG/MOF) composite based on the newly disclosed spatially confined phase separation of the metal and organic moieties of MOFs and the following in situ composition transformation mechanism. Benefitting from effective ion/ charge transport in the whole electrode and the robust structural stability of FeS during electrochemical processes guaranteed by the highly interpenetrated porous conductive network of 3DG and the carbon protective layer with N-and S-codoping, the free-standing 3DG/ FeS@ C electrode delivers an ultrahigh specific capacity of 632 mA h g(-1) after 80 cycles at 100 mA g(-1), and excellent rate capacities of 363.3 and 152.5 mA h g(-1) at 1 and 6 A g(-1) with unprecedented cycling stability with a capacity retention of 97.9% after 300 cycles at 1 A g(-1), which is the best ever reported result for FeS-based anode materials for sodium ion batteries. This study opens up a new MOF-based phase separation avenue to construct sophisticated 3DG wrapped core@ shell nanocomposites and represents an important step to the structural design of high-performance electrodes for electrochemical energy storage.
机译:高性能电化学能量存储系统的发展高度依赖于具有适当组合物的电极材料和整个电极的协同结构设计。在这里,我们创建了一种新颖的柔性三维石墨烯(3DG)混合电极,其核心壳FES @ Carbon(FES @ C)纳米复合材料在3DG内封装在3DG内,通过一步设计的3DG缠绕金属有机框架(3DG / MOF)基于新公开的MOF和有机部分的空间局限性相分离的复合材料及以下原位组合物转化机制。受益于整个电极中的有效离子/电荷传输以及由N-and S-COPOPING的高度互向的多孔导电网络保证的电化学过程中FES的鲁棒结构稳定性,具有N和S编码,独立式3DG / FES @ C电极在100 mA G(-1)的80次循环后,在80次循环后提供超高的特定容量,优异的363.3和152.5 mA Hg(-1),在1和6 A g( -1)具有前所未有的循环稳定性,在1A(-1)下300次循环后的容量保持率为97.9%,这是钠离子电池的FES基阳极材料的最佳报告结果。本研究开辟了一种新的基于MOF的相分离途径,以构建复杂的3DG包装核心@ Shell纳米复合材料,并且代表了用于电化学能量存储的高性能电极结构设计的重要步骤。

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