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Self-Sacrificial Template-Directed Synthesis of Metal-Organic Framework-Derived Porous Carbon for Energy-Storage Devices

机译:自牺牲模板定向合成的金属有机骨架衍生的多孔碳用于储能装置

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Metal-organic framework (MOF)-derived carbon materials exhibit large surface areas, but dominant micropore characteristics and uncontrollable dimensions. Herein, we propose a self-sacrificial template-directed synthesis method to engineer the porous structure and dimensions of MOF-derived carbon materials. A porous zinc oxide (ZnO) nanosheet solid is selected as the self-sacrificial template and two-dimensional (2D) nanostructure-directing agent to prepare 2D ZIF-8-derived carbon nanosheets (ZCNs). The as-prepared ZCN materials exhibit a large surface area with hierarchical porosity. These intriguing features render ZCN materials advanced electrode materials for electrochemical energy-storage devices, demonstrating large ion-accessible surface area and high ion-/electron-transport rates. This self-sacrificial template-directed synthesis method offers new avenues for rational engineering of the porous structure and dimensions of MOF-derived porous carbon materials, thus exploiting their full potential for electrochemical energy-storage devices.
机译:源自金属有机框架(MOF)的碳材料具有较大的表面积,但主要的微孔特征和不可控制的尺寸。在这里,我们提出了一种自我牺牲的模板定向合成方法,以工程化MOF衍生碳材料的多孔结构和尺寸。选择多孔氧化锌(ZnO)纳米片固体作为自我牺牲模板和二维(2D)纳米结构定向剂,以制备2D ZIF-8衍生的碳纳米片(ZCN)。所制备的ZCN材料显示出具有分级孔隙率的大表面积。这些引人入胜的特征使ZCN材料成为用于电化学能量存储设备的高级电极材料,展示出较大的离子可及表面积和高离子/电子传输速率。这种自我牺牲的模板指导的合成方法为合理设计MOF衍生的多孔碳材料的多孔结构和尺寸提供了新途径,从而充分利用了它们在电化学储能装置中的全部潜力。

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