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首页> 外文期刊>ACS nano >In situ transmission electron microscopy observation of the conversion mechanism of Fe_2O_3/graphene anode during Lithiation-Delithiation processes
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In situ transmission electron microscopy observation of the conversion mechanism of Fe_2O_3/graphene anode during Lithiation-Delithiation processes

机译:Fe_2O_3 /石墨烯阳极锂化-脱锂过程中转化机理的原位透射电镜观察

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摘要

Transition metal oxides have attracted tremendous attention as anode materials for lithium ion batteries (LIBs) recently. However, their electrochemical processes and fundamental mechanisms remain unclear. Here we report the direct observation of the dynamic behaviors and the conversion mechanism of Fe_2O_3/graphene in LIBs by in situ transmission electron microscopy (TEM). Upon lithiation, the Fe _2O_3 nanoparticles showed obvious volume expansion and morphological changes, and the surfaces of the electrode were covered by a nanocrystalline Li_2O layer. Single-crystalline Fe_2O _3 nanoparticles were found to transform to multicrystalline nanoparticles consisting of many Fe nanograins embedded in Li_2O matrix. Surprisingly, the delithiated product was not Fe_2O _3 but FeO, accounting for the irreversible electrochemical process and the large capacity fading of the anode material in the first cycle. The charge-discharge processes of Fe_2O_3 in LIBs are different from previously recognized mechanism, and are found to be a fully reversible electrochemical phase conversion between Fe and FeO nanograins accompanying the formation and disappearance of the Li_2O layer. The macroscopic electrochemical performance of Fe_2O_3/graphene was further correlated with the microcosmic in situ TEM results.
机译:过渡金属氧化物作为锂离子电池(LIB)的负极材料已引起了极大的关注。但是,它们的电化学过程和基本机理仍不清楚。在这里,我们报告通过原位透射电子显微镜(TEM)直接观察LIBs中Fe_2O_3 /石墨烯的动力学行为及其转化机理。锂化后,Fe _2O_3纳米粒子表现出明显的体积膨胀和形态变化,并且电极表面被纳米晶体Li_2O层覆盖。发现单晶Fe_2O_3纳米颗粒可转变为包含许多嵌入Li_2O基质中的Fe纳米颗粒的多晶纳米颗粒。令人惊奇的是,脱锂产物不是Fe_2O_3,而是FeO,这说明了不可逆的电化学过程和第一周期阳极材料的大容量褪色。 LIB中Fe_2O_3的充放电过程与先前公认的机理不同,并且被发现是伴随Li_2O层形成和消失的Fe和FeO纳米颗粒之间的完全可逆电化学相变。 Fe_2O_3 /石墨烯的宏观电化学性能与微观原位TEM结果进一步相关。

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