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Development of surface functionalized ZnO-doped LiFePO4/C composites as alternative cathode material for lithium ion batteries

机译:开发表面功能化掺杂ZnO的LiFePO4 / C复合材料作为锂离子电池的替代阴极材料

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Surface modified olivine-type LiFePO4/C-ZnO doped samples were synthesized using sol-gel assisted ball-milling route. In this work, the influence of ZnO-doping on the physiochemical, electrochemical and surface properties such as charge separation at solid-liquid interphase, surface force gradient, surface/ionic conductivity of pristine LiFePO4/C (LFP) has been investigated thoroughly. Synthesized samples were characterized using X- ray diffraction, scanning electron microscopy, atomic force microscopy, and transmission electron microscopy. All the synthesized samples were indexed to the orthorhombic phase with Pnma space group. Pristine LiFePO4 retain its structure for higher ZnO concentrations (i.e. 2.5 and 5.0 wt.% of LFP). Surface topography and surface force gradient measurements by EFM revealed that the kinetics of charge carriers, e(-)/Li+ is more in ZnO-doped LFP samples, which may be attributed to diffusion or conduction process of the charges present at the surface. Among all the synthesized samples LFP/C with 2.5 wt.% of ZnO (LFPZ2.5) displays the highest discharge capacity at all C-rates and exhibit excellent rate performance. LFPZ2.5 delivers a specific discharge capacity of 164 (+/- 3) mAh g(-1) at 0.1C rate. LFPZ2.5 shows best cycling performance as it provides a discharge capacity of 135 (+/- 3) mAh g(-1) at 1C rate and shows almost 95% capacity retention after 50 charge/discharge cycles. Energy density plot shows that LFPZ2.5 offers high energy and power density measured at high discharge rates (5C), proving its usability for hybrid vehicles application. (C) 2016 Published by Elsevier B.V.
机译:使用溶胶-凝胶辅助球磨路线合成了表面改性的橄榄石型LiFePO4 / C-ZnO掺杂样品。在这项工作中,已彻底研究了ZnO掺杂对物理化学,电化学和表面性质(如固液界面处的电荷分离,表面力梯度,原始LiFePO4 / C(LFP)的表面/离子电导率)的影响。使用X射线衍射,扫描电子显微镜,原子力显微镜和透射电子显微镜对合成的样品进行表征。所有合成的样品都被索引到具有Pnma空间群的正交相。原始的LiFePO4保留其结构以用于更高的ZnO浓度(即LFP的2.5和5.0 wt。%)。通过EFM进行的表面形貌和表面力梯度测量显示,在掺杂ZnO的LFP样品中,电荷载体e(-)/ Li +的动力学更大,这可能归因于表面电荷的扩散或传导过程。在所有合成样品中,具有2.5 wt。%ZnO(LFPZ2.5)的LFP / C在所有C速率下均显示出最高的放电容量,并具有出色的倍率性能。 LFPZ2.5在0.1C的速率下可提供164(+/- 3)mAh g(-1)的比放电容量。 LFPZ2.5在以1C的速率提供135(+/- 3)mAh g(-1)的放电容量时表现出最佳的循环性能,并且在50次充电/放电循环后显示出近95%的容量保持率。能量密度图显示,LFPZ2.5在高放电速率(5C)下提供了高能量和功率密度,证明了其在混合动力汽车应用中的可用性。 (C)2016由Elsevier B.V.发布

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