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Sub-5 nm Ultrasmall Metal-Organic Framework Nanocrystals for Highly Efficient Electrochemical Energy Storage

机译:用于高效电化学能量储存的Sub-5 nm超高亚马尔金属 - 有机框架纳米晶体

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Synthesis of ultrasmall metal organic framework (MOF) nanoparticles has been widely recognized as a promising route to greatly enhance their properties but remains a considerable challenge. Herein, we report one facile and effective spatially confined thermal pulverization strategy to successfully transform bulk Co-MOF particles into sub-5 nm nanocrystals encapsulated within N-doped carbon/graphene (NC/G) by using conducting polymer coated Co-MOFs/graphene oxide as precursors. This strategy involves a feasible mechanism: calcination of Co-MOFs at proper temperature in air induces the partial thermal collapse/distortion of the framework, while the uniform coating of a conducting polymer can significantly improve the decomposition temperature and maintain the component stability of Co-MOFs, thus leading to the pulverization of bulk Co-MOF particles into ultrasmall nanocrystals without oxidation. The pulverization of Co-MOFs significantly increases the contact area between Co-MOFs with electrolyte and shortens the electron and ion transport pathway. Therefore, the sub-5 nm ultrasmall MOF nanocrystals-based composites deliver an ultrahigh reversible capacity (1301 mAh g(-1) at 0.1 A g(-1)), extraordinary rate performance (494 mAh g(-1) at 40 A g(-1)), and outstanding cycling stability (98.6% capacity retention at 10 A g(-1) after 2000 cycles), which is the best performance achieved in all reported MOF-based anodes for lithium-ion batteries.
机译:超超级金属有机骨架(MOF)纳米颗粒的合成已被广泛认为是大大提高其性质但仍有相当大的挑战途径。在此,我们通过使用导电聚合物涂覆的CO-MOF /石墨烯来报告一种容易和有效的空间局限性的热粉体策略以将载体CO-MOF颗粒成功地将载体CO-MOF颗粒转化为包封在N掺杂的碳/石墨烯(NC / G)内的亚5 NM纳米晶体中氧化物作为前体。该策略涉及一种可行的机制:在空气中适当温度的煅烧煅烧诱导框架的部分热塌陷/变形,而导电聚合物的均匀涂层可以显着提高分解温度并保持共同的组件稳定性因此,MOF,从而导致块状硅酸盐颗粒的粉碎成超薄纳米晶体而不氧化。 CO-MOF的粉碎显着增加了具有电解质的CO-MOF之间的接触面积,并缩短了电子和离子传输途径。因此,Sub-5 nm超大MOF纳米晶体基复合材料提供超高可逆容量(1301mAhg(-1),在0.1Ag(-1)),特殊速率性能(494mAhg(-1)为40 a G(-1))和优异的循环稳定性(在2000次循环后的10 A g(-1)的98.6%的容量保留),这是所有报告的锂离子电池的所有报告的MOF基阳极达到的最佳性能。

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