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Olivine-type LiFePO4/C composite cathode materials were synthesized by a solid-state reaction method in an inert atmosphere. The glucose was added as conductive precursors before the formation of the crystalline phase. The effects of glucose content on the properties of as-synthesized cathode materials were investigated. The crystal structure and the electrochemical performance were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), laser particle-size distribution measurement and electrochemical performance testing. The material has a single crystal olivine structure with grain-sizes ca. 100-200 nm. SEM micrographs and the corresponding energy dispersive spectrometer (EDS) data confirm that the carbon particulates produced by glucose pyrogenation are uniformly dispersed among the LiFePO4 grains, ensuring a good electronic contact. Impedance spectroscopy was used to investigate the ohmic and kinetic contributions to the cell performance. It is found that increasing the carbon content leads to a reduction of the cell impedance due to the reduction of the charge transfer resistance. The galvanostatically charge and discharge tests show that the material obtained by adding 10% C (by mass) gives a maximum discharge capacity of 140.8mA·h·g^-1 at the same rate (C/10). The material also displays a more stable cycle-life than the others. 相似文献
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掺杂元素对锂离子电池正极材料LiFePO4的影响 总被引:1,自引:2,他引:1
为提高锂离子电池正极材料LiFePO4的充放电性能,用Mg,Al,V和Ti对LiFePO4进行掺杂。研究了掺杂元素的种类和用量对LiFePO4性能和结构的影响。可用高温固相反应制备单相LiMxFe1-xPO4 (M=Mg,Al,V和Ti)。在LiMxFe1-xPO4 材料中,LiV0. 05Fe0. 95PO4具有比LiFePO4更好的电化学性能,用80mA/g的电流进行充放电时,第二次放电比容量为130. 429mA·h/g,循环20次后为131. 196mA·h/g。 相似文献
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采用高温固相合成法二次灼烧工艺制备锂离子电池正极复合材料LiFePO4/C。经300℃和650℃二次灼烧,得到了从纳米到亚微米尺寸的LiFePO4和LiFePO4/C复合材料。X射线衍射(XRD)结果表明,所得到的LiFePO4和LiFePO4/C样品具有单一的橄榄石型晶体结构,且具高纯度。在多种碳源(如乙炔黑、Vulcan XC-72碳黑、鳞状石墨、各向异性石墨和葡萄糖)制备的LiFePO4/C复合材料中,以葡萄糖为碳源合成的样品具有最好的电化学性能。在电池工作温度由室温提高到40℃时,由于复合材料的电子电导率增大和锂离子在材料中的扩散速度加快,电池的充放电循环性能明显提高。 相似文献
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对近几年有关LiFePO4作为锂离子电池新型正极材料的研究进行了系统分析。比较了不同的合成方法及掺杂对材料性能的影响,对LiFePO4性能提出了进一步改进的措施;认为掺杂一种或多种高价金属元素是很有前途的方法。 相似文献
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采用共沉淀法合成了纯相橄榄石型LiFePO4粉体。利用XRD、SEM研究了原料配比、合成温度、保温时间等合成工艺条件与产物的物相组成、晶粒尺寸和颗粒形貌的关系。结果表明:在FeSO4:LiOH:H3PO4=1:3:1、合成反应温度650℃、保温时间6小时的工艺条件下,能够合成颗粒尺寸形貌符合正极材料要求的纯相橄榄石型LiFePO4。 相似文献
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共沉淀法合成磷酸铁锂掺碳复合正极材料 总被引:2,自引:0,他引:2
采用共沉淀法合成了纯相橄榄石型磷酸铁锂(LiFePO4)和磷酸铁锂掺碳(LiFePO4/C)复合正极材料.利用X射线衍射(XRD)、原子吸收(AAS)、扫描电镜(SEM)、红外吸收(FT-IR)、振实密度测定等方法对其进行表征,并组装成电池研究其电化学性能.结果表明:HFePO4和LiFePO4/C具有单一的橄榄石型晶体结构,前者的振实密度可达1.58 g/cm2,LiFePO4/C振实密度有所降低,但充放电平台非常平稳.与纯相LiFePO4相比,LiFePO4/C具有更高的放电比容量和循环性能,室温下以0.05 C和0.1 C倍率电流充放电,首次放电比容量达到158.1,150.0 mA·k/g.充放电循环20次后放电比容量仍保持在154.2,137.2 mA·h/g. 相似文献
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以高温固相法制备了高密度的LiFePO4正极材料,利用XRD、SEM、粒度分析、交流阻抗以及充放电测试等方法研究了前驱体Li3PO4和FePO4的比例与LiFePO4的物理性能和电化学性能的关系。其中,在Li3PO4与FePO4物质的量比为3:2时,制备的LiFePO4正极材料振实密度高达1.4g/cm^3,以0.1C放充电时,其首次放电比容量为159.0mA·h/g,体积比容量为222.6A·h/L,循环25次后,容量保持率达94.0%。 相似文献
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锂离子电池正极材料LiFePO4/C的研究进展 总被引:1,自引:0,他引:1
橄榄石型LiFePO4正极材料具有原料来源丰富、无毒、环境友好、理论容量较高、热稳定性和循环性能好等特点.是近年来迅速发展起来的一种锂离子电池的正极材料.但是由于纯LiFePO4的电子导电率低及锂离子扩散速度慢等缺点,限制了其工业化.针对这种情况,近些年来研究人员从合成方法,表面改性,金属掺杂等方面时磷酸铁锂做了许多的研究工作,其中一种有效的方法就是在LiFePO4的表面包覆碳,增加导电率,减小材料颗粒尺寸,提高电化学性能.时近年来的LiFePO4的合成方法及碳包覆原理进行了综述. 相似文献
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采用改进的共沉淀-微波法,利用自制加料装甓合成了橄榄石型LiFePO_4/C复合正极材料.应用X射线衍射(XRD)、循环伏安(CV)以及恒电流充放电测试等方法对目标材料进行了结构表征和电化学性能测试.实验结果表明微波烧结8 min的样品具有单一的橄榄石型晶体结构和较好的电化学性能,0.2 C倍率下充放电测试表明,其首次放电比容量158.09 mAh/g,20次循环后,容量没有明显衰减.0.5、1、2C倍率下的平均放电容量分别为135.42、98.40、83.79 mAh/g,循环过程中样品表现出较好的循环稳定性. 相似文献
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用于锂离子电池负极SnO2MCMB复合材料的研究 总被引:3,自引:0,他引:3
以中间相碳微球(MCMB)为核心,用直接沉淀法制备了一种氧化锡颗粒修饰的新型复合碳材料.用X射线衍射和扫描电镜对材料的结构及形貌进行了表征.通过恒流充放电、交流阻抗、循环伏安等测试手段对该材料的嵌脱锂特性进行了研究,循环20周后其比容量仍然保持在360 mAh/g以上.此种复合物可以作为一种锂离子电池新型负极材料. 相似文献
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Alien atom was used to obtain a series of LiFe1-xLaxPO4/C (x=0, 0.002, 0.005, 0.01, 0.015) cathode materials with the aim of investigating the influence of participation of La on the electrochemical behavior of LiFePO4/C. Combination of X-ray diffractometer, scanning electron microscope equipped with energy dispersive spectrometer and high resolution transmission electron microscope was applied. The results show that all the La-doped LiFePO4/C samples are olivine type crystals, La ion is sufficiently introduced into the network, and every element is well homogeneously distributed. There are many pore spaces on the surface of particles. The content of carbon in the prepared cathode materials remains 13.6% calculated by TGA/DTA curves, and the particles are wrapped by a uniformly and continuous carbon layer with the thickness of about 2 nm. Similarly, the content of Fe2P also keeps the same basically in all the cathode materials as a result of the similar ratio (2.35) of peak intensity at 36.5o and 37.1o from XRD. The increasing trend is most pronounced at doped 0.005 which presents the highest initial discharge capacity of 163 mA×h/g, lowest charge transfer resistance of 5.52 W, superior diffuse ability of lithium ion (10-11 cm2/s) and the best capacity retention current rate of about 93% after 50 cycles at 0.1 C. 相似文献