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Facile Preparation of Porous Rod-like CuxCo3–xO4/C Composites via Bimetal–Organic Framework Derivation as Superior Anodes for Lithium-Ion Batteries

机译:通过双金属有机骨架衍生物作为锂离子电池的超级阳极,方便地制备多孔棒状CuxCo3-xO4 / C复合材料

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To meet growing demand of energy, lithium-ion batteries (LIBs) are under enormous attention. The development of well-designed ternary transition metal oxides with high capacity and high stability is important and challengeable for using as electrode materials for LIBs. Herein, a new and highly reversible carbon-coated Cu-Co bimetal oxide composite material (CuxCo3–xO4/C) with a one-dimensional (1D) porous rod-like structure was prepared through a bimetal–organic framework (BMOF) template strategy followed by a morphology-inherited annealing treatment. During the annealing process, carbon derived from organic frameworks in situ fully covered the synthesized bimetal oxide nanoparticles, and a large number of porous spaces were generated in the MOF-derived final samples, thus ensuring high electrical conductivity and fast ion diffusion. Benefiting from the synergetic effect of bimetals, the unique 1D porous structure, and conductive carbon network, the as-synthesized CuxCo3–xO4/C delivers a high capacity retention up to 92.4% after 100 cycles, with a high reversible capacity still maintained at 900 mA h g–1, indicating an excellent cycling stability. Also, a good rate performance is demonstrated. These outstanding electrochemical properties show us a concept of synthesis of MOF-derived bimetal oxides combining both advantages of carbon incorporation and porous structure for progressive lithium-ion batteries.
机译:为了满足不断增长的能源需求,锂离子电池(LIB)受到了极大的关注。设计良好的具有高容量和高稳定性的三元过渡金属氧化物对于用作LIBs的电极材料是重要且具有挑战性的。在本文中,通过双金属-有机骨架(BMOF)模板策略制备了具有一维(1D)多孔棒状结构的新型且高度可逆的碳涂层Cu-Co双金属氧化物复合材料(CuxCo3-xO4 / C)然后进行形态继承退火处理。在退火过程中,原位来自有机骨架的碳完全覆盖了合成的双金属氧化物纳米颗粒,并且在MOF衍生的最终样品中产生了大量的多孔空间,从而确保了高电导率和快速的离子扩散。得益于双金属的协同效应,独特的一维多孔结构和导电碳网络,合成后的CuxCo3-xO4 / C在100次循环后可提供高达92.4%的高容量保持率,而高可逆容量仍保持在900 mA hg-1,表明出色的循环稳定性。此外,还展示了良好的速率性能。这些出色的电化学性能向我们展示了MOF衍生的双金属氧化物的合成概念,结合了碳掺入和多孔结构的优点,适用于渐进式锂离子电池。

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