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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Surface modification of a cobalt-free layered Li[Li0.2Fe0.1Ni0.15Mn0.55]O-2 oxide with the FePO4/Li3PO4 composite as the cathode for lithium-ion batteries
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Surface modification of a cobalt-free layered Li[Li0.2Fe0.1Ni0.15Mn0.55]O-2 oxide with the FePO4/Li3PO4 composite as the cathode for lithium-ion batteries

机译:用FePO4 / Li3PO4复合材料作为锂离子电池的阴极,对无钴层状Li [Li0.2Fe0.1Ni0.15Mn0.55] O-2氧化物进行表面改性

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摘要

A low-cost, layered Li[Li0.2Fe0.1Ni0.15Mn0.55]O-2 oxide is successfully coated with the FePO4/Li3PO4 composite by an aqueous solution method to achieve high electrochemical performance. X-ray diffraction (XRD) patterns indicate that the modified sample is a hexagonal phase with a minor crystalline Li3PO4 phase inside. Compared with the pristine sample, the modified ones show no change in morphology characterized by scanning electron microscopy (SEM) analysis. However, a uniform coating layer of the FePO4/Li3PO4 composite can be observed clearly in the transmission electron microscopy (TEM) images. By electrochemical characterization, the composite coating layer is proved to be beneficial for improving the reversible capacity and cycling stability of the modified sample (a higher reversible discharge capacity of 192 mA h g(-1) after 50 cycles with a 3 wt% coating amount). Surprisingly, the high-rate capability is also observed to be improved with a 3 wt% coating amount (125.3 mA h g(-1) after 100 cycles at 10 C). Furthermore, the voltage decay phenomenon during cycling is slowed down greatly and thus phase transformation is suppressed by the composite coating layer. These results are attributed to the suppression of the bulk material from direct exposure to the electrolyte by the amorphous FePO4 coating component and the good Li+ transport through the Li3PO4 coating component. The prepared modified materials can meet the requirements of low cost and high performance in various applications for lithium-ion batteries.
机译:通过水溶液法成功地用FePO4 / Li3PO4复合材料涂覆了低成本的层状Li [Li0.2Fe0.1Ni0.15Mn0.55] O-2氧化物,以实现高电化学性能。 X射线衍射(XRD)图谱表明改性样品为六方相,内部有少量结晶Li3PO4相。与原始样品相比,经修饰的样品通过扫描电子显微镜(SEM)分析表征没有形态变化。但是,可以在透射电子显微镜(TEM)图像中清楚地观察到FePO4 / Li3PO4复合材料的均匀涂层。通过电化学表征,复合涂层被证明有利于改善改性样品的可逆容量和循环稳定性(50次循环后具有3 wt%的涂布量,可逆放电容量更高,为192 mA hg(-1)) 。令人惊讶地,还观察到以3 wt%的涂覆量(在10 C下100次循环后为125.3 mA h g(-1))提高了高倍率能力。此外,循环过程中的电压衰减现象大大减慢,因此复合涂层抑制了相变。这些结果归因于通过无定形的FePO 4涂层组分抑制了散装材料直接暴露于电解质中以及通过Li 3 PO 4涂层组分的良好的Li +传输。所制备的改性材料可以满足锂离子电池在各种应用中低成本和高性能的要求。

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