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首页> 外文期刊>Journal of Colloid and Interface Science >Co0.85Se@N-doped reduced graphene oxide hybrid polyhedron-in-polyhedron structure assembled from metal-organic framework with enhanced performance for Li-ion storage
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Co0.85Se@N-doped reduced graphene oxide hybrid polyhedron-in-polyhedron structure assembled from metal-organic framework with enhanced performance for Li-ion storage

机译:CO0.85SE-DOPED的石墨烯氧化物混合多面体聚醚型互联网结构,从金属有机框架组装,具有增强的锂离子储存性能

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Structure control is widely admitted as a feasible strategy to restrain volume change and enhance electrical conductivity for chalcogenide anode materials. Herein, three-dimensionally hierarchical structure Co0.85Se@N-doped graphene hybrid is well-designed and synthesized by a facile hydrothermal strategy and post-calcination. It is noted that, owing to the nanoscale Kirkendall effect, the Co0.85Se nanograins derived from uniform zeolitic imidazolate framework (ZIF-67) precursor are incorporated into a polyhedron-in-polyhedron structure, which is consisted of in-situ formed amorphous carbon and interconnected pliable graphene nanosheets with enormous N-doping atoms. This unique dual-carbon protecting layers are beneficial to mitigate the volume expansion with high integrity, and facilitate the fast Li/electron transport with improved conductivity simultaneously, thus resulting in the superior Li-storage performance. As expected, the framework-controlled Co0.85Se@N-doped rGO composite demonstrates an outstanding cycling stability (787.7 mA h g(-1) after 1000 cycles at 2 A g(-1)) and remarkable rate capability (400.8 mA h g(-1) at ultrahigh rate of 10 A g(-1)). This work presents an enlightened strategy to design chalcogenide anode with desired nano-/microstructure by structure control and kinetic increase. (C) 2020 Elsevier Inc. All rights reserved.
机译:结构控制被广泛承认,以抑制体积变化的可行策略,提高硫属元素化物阳极材料的电导率。在此,通过容易的水热策略和后煅烧,三维分层结构COO 0.85SE @ NO-掺杂的石墨烯杂交机良好地设计和合成。应注意,由于纳米级Kirkendall效应,衍生自均匀沸石咪唑酯骨架(ZIF-67)前体的COO.85SE纳米甲基掺入多面体 - in-polyhron结构中,其由原位形成的无定形碳组成并与巨大的N掺杂原子相互连接的柔韧石墨烯纳米片。这种独特的双碳保护层有利于减轻高完整性的体积膨胀,并促进快速Li /电子同时具有改善的导电性,从而导致锂储存性能优异。正如预期的那样,框架控制的CO0.85Se@n-doped rgo复合材料显示出优异的循环稳定性(787.7 mA Hg(-1),在2Ag(-1))和显着的速率能力(400.8 mA hg( -1)以10A G(-1)的超高速率)。该工作介绍了通过结构控制和动力学增加设计具有所需纳米/微观结构的硫属化物阳极的开明策略。 (c)2020 Elsevier Inc.保留所有权利。

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