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首页> 外文期刊>Nano Energy >Reduced graphene oxide wrapped MOFs-derived cobalt-doped porous carbon polyhedrons as sulfur immobilizers as cathodes for high performance lithium sulfur batteries
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Reduced graphene oxide wrapped MOFs-derived cobalt-doped porous carbon polyhedrons as sulfur immobilizers as cathodes for high performance lithium sulfur batteries

机译:还原的氧化石墨烯包裹的MOF衍生的钴掺杂的多孔碳多面体作为硫固定剂,用作高性能锂硫电池的阴极

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摘要

Reduced graphene oxide (RGO) wrapped metal-organic frameworks (MOFs) derived cobalt doped porous carbon polyhedrons synthesized via a carbonization process, are for the first time used for sulfur immobilizers (RGO/C-Co-S) as cathodes for high performance lithium-sulfur (Li-S) batteries. The RGO/C-Co-S cathode exhibits greatly improved electrochemical performance, showing excellent specific capacity of 949 mAh g(-1) at 300th cycle at a current density 0.3 A g(-1), displaying enhanced rate capability with specific capacity of 772, 704 and 606 mAh g(-1) at current density of 0.5, 1 and 2 A g(-1), respectively. The synergetic effect of MOFs-derived porous carbon, homogeneously distributed Co nanoparticles and RGO nanosheets simultaneously contributes to the confinement of sulfur species. The presence of abundant mesopores and micropores is conducive to immobilize large amounts of S species. The homogenously inlaid ultrafine Co nanoparticles can further immobilize sulfur by chemical interactions between Co and S/polysulfides. The RGO nanosheets tightly wrapped on carbon hosts act as barrier layers to prevent polysulfides from diffusing out of the matrix, further suppressing shuttle effect. The porous structure and the RGO can effectively alleviate the volume changes resulted from charge-discharge process. This design strategy can be inspiring for MOF-derived materials in energy storage applications. (C) 2016 Published by Elsevier Ltd.
机译:通过碳化过程合成的还原氧化石墨烯(RGO)包裹的金属有机骨架(MOFs)衍生的钴掺杂多孔碳多面体,首次用于硫固定剂(RGO / C-Co-S)作为高性能锂的阴极-硫(Li-S)电池。 RGO / C-Co-S阴极展现出显着改善的电化学性能,在第300次循环中在0.3 A g(-1)的电流密度下显示出出色的比容量949 mAh g(-1),显示了比容量为的增强的倍率能力电流密度分别为0.5、1和2 A g(-1)时的772、704和606 mAh g(-1)。 MOF衍生的多孔碳,均匀分布的Co纳米颗粒和RGO纳米片的协同作用同时有助于限制硫物种。丰富的中孔和微孔的存在有利于固定大量的S物种。均匀镶嵌的超细Co纳米颗粒可通过Co与S /多硫化物之间的化学相互作用进一步固定硫。紧密包裹在碳主体上的RGO纳米片用作阻挡层,以防止多硫化物扩散出基质,进一步抑制穿梭效应。多孔结构和RGO可以有效减轻充放电过程中的体积变化。这种设计策略可能会启发MOF衍生的材料在储能应用中的应用。 (C)2016由Elsevier Ltd.出版

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