Synthesis of Cathode Active Material LiMn0.5Fe0.5PO4F/C with Sintering Time Variation

Mitra M Simaremare, B. Prihandoko
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Abstract

Research has been carried out on the synthesis of LiMn0.5Fe0.5PO4F/C, the cathode active materials with variations in sintering time. The process of producing the LiMn0,5Fe0,5PO4F/C as an active material in lithium battery cathodes has been successfully carried out by the first forming host structure and then infiltrating the lithium Li ions and the flour F ions. In this study, the synthesis was carried out with various sintering time, 6 hours, 8 hours and 10 hours. The raw materials used in this study are manganese dioxide (“MnO2”), iron (III) oxide (“Fe2O3”), lithium fluoride (“LiF”) and phosphoric acid (“H3PO4”) as the solvents. The synthesis was carried out at a calcination temperature of 720°C for 8 hours. The first mashed use a milling process for about 180 minutes, and placed into the oven, then mashed using a mortar. Then the Mn0.5Fe0.5PO4 sample was added with LiF, mixed with the milling process, placed into a drying oven and was varied with the sintering time of 6 hours for the first sample, 8 hours for the second sample and 10 hours for the third sample. As to produce LiMn0.5Fe0.5PO4F material, followed by carbon coating, namely tapioca and sugar (8%:4%). All three samples were calcined at a temperature of 720°C for 4 hours. The results of XRD analysis showed that the three samples did not experience a phase of change, however only shows a few differences in intensity. The results of FESEM analysis show that grain growth occurs vertically and horizontally due to the presence of the Mn and Fe, and with an exact enough amount of tapioca function as a carbon source to coat the active material, it help to creates pores in the powder so that the presence of these pores could provide an intercalation pathway for the lithium ions. At the end the results of the EIS analysis showed that the highest conductivity value of this study was 0.62 x 10-5 S/cm.
随烧结时间变化阴极活性材料LiMn0.5Fe0.5PO4F/C的合成
研究了随烧结时间变化的正极活性材料LiMn0.5Fe0.5PO4F/C的合成。采用先形成主体结构,再渗透锂离子Li离子和粉离子F离子的方法,成功制备了锂电池阴极活性材料LiMn0、5Fe0、5PO4F/C。在本研究中,采用不同的烧结时间,分别为6小时、8小时和10小时进行合成。本研究使用的原料为二氧化锰(MnO2)、氧化铁(Fe2O3)、氟化锂(LiF)和磷酸(H3PO4)作为溶剂。在720℃煅烧8小时的条件下进行了合成。先将土豆泥用磨粉的过程捣碎约180分钟,然后放入烤箱,再用研钵捣碎。然后将Mn0.5Fe0.5PO4样品加入liff,混合磨粉工艺,放入干燥箱中,烧结时间分别为第一次烧结6小时,第二次烧结8小时,第三次烧结10小时。以制得LiMn0.5Fe0.5PO4F材料,其次是碳包覆,即木薯粉和糖(8%:4%)。三种样品在720℃的温度下煅烧4小时。XRD分析结果表明,三种样品均未发生相变,仅表现出少量的强度差异。FESEM分析结果表明,Mn和Fe的存在使晶粒在垂直和水平方向上生长,而足够数量的木薯粉作为碳源包裹在活性物质上,有助于在粉末中形成孔隙,这些孔隙的存在为锂离子提供了插层途径。最后EIS分析结果显示,本研究的最高电导率值为0.62 × 10-5 S/cm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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