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New Fe2O3-Clay@C Nanocomposite Anodes for Li-Ion Batteries Obtained by Facile Hydrothermal Processes

机译:方便的水热法制备锂离子电池用新的Fe2O3-Clay @ C纳米复合阳极

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摘要

New iron-oxide-based anodes are prepared by an environmentally-friendly and low-cost route. The analysis of the composition, structure, and microstructure of the samples reveals the presence of a major hematite phase, which is accompanied by a certain concentration of an oxyhydroxide phase, which can act as a “lithium-reservoir”. By using sodium alginate as a binder, the synthesized anodes display superior electrochemical response, i.e., high specific capacity values and high stability, not only versus Li but also versus a high voltage cathode in a full cell. From these bare materials, clay-supported anodes are further obtained using sepiolite and bentonite natural silicates. The electrochemical performance of such composites is improved, especially for the sepiolite-containing one treated at 400 °C. The thermal treatment at this temperature provides the optimal conditions for a synergic nano-architecture to develop between the clay and the hematite nanoparticles. High capacity values of ~2500 mA h g−1 after 30 cycles at 1 A g−1 and retentions close to 92% are obtained. Moreover, after 450 cycles at 2 A g−1 current rate, this composite electrode displays values as high as ~700 mA h g−1. These results are interpreted taking into account the interactions between the iron oxide nanoparticles and the sepiolite surface through hydrogen bonds. The electrochemical performance is not only dependent on the oxidation state and particle morphology, but the composition is revealed as a key feature.
机译:新型的基于氧化铁的阳极是通过环保,低成本的途径制备的。对样品的组成,结构和微观结构的分析表明,存在主要的赤铁矿相,并伴有一定浓度的羟基氧化物相,可以用作“锂储层”。通过使用藻酸钠作为粘合剂,合成的阳极不仅在锂电池中而且在整个电池中的高压阴极上都表现出优异的电化学响应,即高的比容量值和高的稳定性。从这些裸露的材料,使用海泡石和膨润土天然硅酸盐还可以得到粘土负载的阳极。这种复合材料的电化学性能得到了改善,特别是对于在400°C下处理的含海泡石的复合材料。在此温度下的热处理为在粘土和赤铁矿纳米粒子之间形成协同纳米结构提供了最佳条件。在1 A g -1 进行30次循环后,获得约2500 mA h g -1 的高电容值,并且保留率接近92%。此外,在2 A g -1 电流速率下进行450次循环后,该复合电极显示的值高达〜700 mA h g -1 。考虑到氧化铁纳米颗粒和海泡石表面之间通过氢键的相互作用,解释了这些结果。电化学性能不仅取决于氧化态和颗粒形态,而且其组成被揭示为关键特征。

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