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Design of multishell microsphere of transition metal oxides/carbon composites for lithium ion battery

机译:锂离子电池过渡金属氧化物/碳复合材料多层微球的设计

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摘要

Although the synthesis of transition metal oxide hollow structure is well established, it is still very difficult to control the size distribution, morphological uniformity, cavity volume, shell clarity and functional groups of products. Herein, the strategy of "oxidation-sedimentation-recrystallization-formation" was proposed to synthesis of well-defined multi-shelled hollow microsphere by thermal oxidation of the metal-organic frameworks (MOFs) general precursors. The spherical Ni-MOF and Co-MOF are first synthesized and subsequently transformed into corresponding multi-shelled metal oxide and carbon composites. These nitrogen-doped multi-shelled Co3O4@ carbon hollow microspheres were adopted as anode for lithium-ion batteries, demonstrating remarkable electrochemical properties. Impressively, an ultra-high reversible capacity of 1701 mAh g(-1) was retained at a current density of 100 mA g(-1) after 60 cycles. Even at a large current density of 5000 mA g(-1), 427 mAh g(-1) was retained.
机译:虽然过渡金属氧化物中空结构的合成已经很好地建立,但仍然非常难以控制尺寸分布,形态均匀性,腔体积,壳体透明度和产品官能团。在此,提出了“氧化 - 沉淀 - 重结晶 - 形成形成”的策略通过金属 - 有机骨架(MOF)通用前体的热氧化来合成明确定义的多壳中空微球。首先合成球形Ni-MOF和CO-MOF,随后转化为相应的多壳金属氧化物和碳复合材料。将这些氮掺杂的多壳CO3O4 /碳中空微球作为锂离子电池用作阳极,展示了显着的电化学性质。令人印象深刻地,在60个循环后,在电流密度为100mA g(-1)的电流密度的超高可逆容量。即使在5000 mA g(-1)的大电流密度下,保留了427mAhg(-1)。

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