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Morphology-controlled solvothermal synthesis of LiFePO4 as a cathode material for lithium-ion batteries

机译:形态控制溶剂热合成LiFePO4作为锂离子电池正极材料

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LiFePO4 (LFP) nanoparticles (~50 nm in size), nanoplates (100 nm thick and 800 nm wide) and microplates (300 nm thick and 3 nm wide) have been selectively synthesized by a solvothermal method in a water-polyethylene glycol (PEG) binary solvent using H3PO4, LiOH·H2O and FeSO4·7H2O as precursors. The morphology and size of the LFP particles were strongly dependent on synthetic parameters such as volume ratio of PEG to water, temperature, concentration, and feeding sequence. The carbon coated nanoparticles and nanoplates could deliver a discharge capacity of > 155 mAh g~(-1) at 0.1C rate (i.e. 17 mA g~(-1) of current density); in comparison, the carbon coated microplates had a discharge capacity as low as 110 mAh g~(-1) at 0.1C rate. The Li-ion diffusion coefficients of the carbon coated nanoparticles, nanoplates, and microplates were calculated to be 6.4 x 10~(-9), 4.2 x 10~(-9), and 2.2 x 10~(-9) cm~2 s~(-1) respectively. When the content of conductive Super P carbon (SP) was increased to 30 wt.%, the prepared electrodes could charge-discharge at a rate as high as 20C. Over 1000 cycles at 20C, the nanoparticle electrode could maintain 89% of its initial capacity (126 mAh g~(-1)), the nanoplate electrode showed 79% capacity retention compared to an initial capacity (129 mAh g~(-1)), and the microplate electrode retained 80% of its initial capacity (63.5 mAh g~(-1)).
机译:通过溶剂热法在水-聚乙二醇(PEG)中选择性合成了LiFePO4(LFP)纳米粒子(〜50 nm大小),纳米板(100 nm厚和800 nm宽)和微板(300 nm厚和3 nm宽) )使用H3PO4,LiOH·H2O和FeSO4·7H2O作为前驱体的二元溶剂。 LFP颗粒的形态和大小在很大程度上取决于合成参数,例如PEG与水的体积比,温度,浓度和进料顺序。碳包覆的纳米颗粒和纳米板在0.1C的速率下(电流密度为17 mA g〜(-1))可以提供> 155 mAh g〜(-1)的放电容量;相比之下,碳包被的微板在0.1C速率下的放电容量低至110 mAh g〜(-1)。碳包覆的纳米颗粒,纳米板和微板的锂离子扩散系数经计算为6.4 x 10〜(-9),4.2 x 10〜(-9)和2.2 x 10〜(-9)cm〜2 s〜(-1)。当导电Super P碳(SP)的含量增加到30wt。%时,所制备的电极可以以高达20℃的速率进行充放电。在20°C下经过1000次循环后,纳米颗粒电极可以维持其初始容量(126 mAh g〜(-1))的89%,纳米板电极显示出79%的初始容量(129 mAh g〜(-1))的容量保持率。 ),微孔板电极保留了其初始容量的80%(63.5 mAh g〜(-1))。

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