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Maghemite Nanoparticles on Electrospun CNFs Template as Prospective Lithium-Ion Battery Anode

机译:电纺CNF模板上的磁赤铁矿纳米粒子作为锂离子电池阳极

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In this work, maghemite (r-Fe2O3) nanoparticles were uniformly coated on carbon nanofibers (CNFs) by a hybrid synthesis procedure combining an electrospinning technique and hydrothermal method. Poly-acrylonitrile nanofibers fabricated by the electrospinning technique serve as a robust support for iron oxide precursors during the hydrothermal process and successfully limit the aggregation of nanoparticles at the following carbonization step. The best materials were optimized under a carbonization condition of 600 °C for 12 h. X-ray diffraction and electron microscopy studies confirm the formation of a maghemite structure standing on the surface of CNFs. The average size of γ-Fe2O3 nanoparticles is below 100 nm, whereas CNFs are~150 nm in diameter. In comparison with aggregated bare iron oxide nanoparticles, the as-prepared carbon-maghemite nanofibers exhibit a higher surface area and gready improved electrochemical performance (>830 mAh g~(-1) at 50 mA g for 40 cycles and high rate capacity up to 5 A g~(-1) in the voltage range of 0.005-3 V vs Li). The greatly enhanced electrochemical performance is attributed to the unique one-dimensional nanostructure and the limited aggregation of nanoparticles.
机译:在这项工作中,通过结合电纺丝技术和水热方法的混合合成程序,将磁赤铁矿(r-Fe2O3)纳米颗粒均匀地涂覆在碳纳米纤维(CNF)上。通过电纺技术制造的聚丙烯腈纳米纤维在水热过程中可作为氧化铁前体的牢固载体,并在随后的碳化步骤中成功地限制了纳米颗粒的聚集。最好的材料在600°C的碳化条件下12 h进行了优化。 X射线衍射和电子显微镜研究证实了站在CNF表面的磁赤铁矿结构的形成。 γ-Fe2O3纳米粒子的平均尺寸小于100 nm,而CNF的直径约为150 nm。与聚集的裸铁氧化物纳米粒子相比,所制备的碳-磁赤铁矿纳米纤维具有更高的表面积,并且在50 mA g的40次循环下电化学性能得到了改善(> 830 mAh g〜(-1)),并具有高倍率容量在0.005-3 V对Li的电压范围内为5 A g〜(-1)。电化学性能的大大提高归因于独特的一维纳米结构和纳米颗粒的有限聚集。

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