首页> 外文期刊>Electrochimica Acta >Sc-doping induced cation-disorder in LiNi0.5Mn1.5O4 spinel leading to improved electrochemical performance as cathode in lithium ion batteries
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Sc-doping induced cation-disorder in LiNi0.5Mn1.5O4 spinel leading to improved electrochemical performance as cathode in lithium ion batteries

机译:SCI0.5MN1.5O4尖晶石的SC-掺杂诱导阳离子紊乱,导致锂离子电池中的电化学性能提高了电化学性能

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摘要

Ni/Mn disordered LiNi0.5Mn1.5O4 spinel is the most promising cathode material for lithium ion batteries due to its high energy and power densities. However, the Ni/Mn disorder coupled with high Mn3+ content and concomitant formations of NiO/LiyNi1-yO impurities deteriorate its electrochemical performances. To overcome this issue, Sc-doped disordered spinel LiNi0.5Mn1.44Sc0.06O4 without NiO/LiyNi1-yO impurities has been synthesized. Infrared spectroscopy, magnetic measurements and cyclic voltammetry results reveal the increase in Ni/Mn disordering of LiNi0.5Mn1.44Sc0.06O4 than pristine spinel which decreases the charge transfer resistance and enhances the electrochemical performances. The XPS spectrum of LiNi0.5Mn1.44Sc0.06O4 exhibits Sc2p(3/2) (402.3 eV) and Sc2p(1/2) (406.5 eV) bands confirming the presence of Sc3+ in the spinel lattice. Sc-doped spinel delivers an initial discharge capacity 131 mAhg(-1) with 88% columbic efficiency at 0.1C rate. Under similar condition, the undoped spinel yields only 123 mAhg(-1) with 81% columbic efficiency. In addition, cycling stability of the doped spinel has increased dramatically with increase in the C-rate. At 5C, it exhibits a specific capacity of 102 mAhg(-1) with 98% capacity retention even after 1000 cycles. Furthermore, it demonstrates excellent rate capability due to enhanced lithium-ion diffusion kinetics. The improved performance of the spinel can be attributed to the stabilization of the cation disordered structure. Thus, the Sc-doped spinel could be a potential cathode material for lithium ion batteries for electric vehicle applications. (C) 2019 Elsevier Ltd. All rights reserved.
机译:Ni / Mn紊乱的LINI0.5MN1.5O4尖晶石是锂离子电池的最有希望的阴极材料,由于其高能量和功率密度。然而,与高Mn3 +含量和NiO / Liyni1-Yo杂质的伴随地层偶联的Ni / Mn紊乱恶化了其电化学性能。为了克服这个问题,已经合成了SC-掺杂无序的尖晶石LINI0.5MN1.44SC0.06O4,没有NIO / LIYNI1-YO杂质。红外光谱,磁性测量和循环伏安法结果揭示了LINI0.5MN1.44SC0.06O4的Ni / Mn障碍的增加而不是原始尖晶石,这降低了电荷传递阻力并增强了电化学性能。 LINI0.5MN1.44SC0.06O4的XPS光谱表现出SC2P(3/2)(402.3eV)和SC2P(1/2)(406.5 eV)条带证实尖晶石格中的SC3 +的存在。 SC-DOPED SPINEL在0.1C速率下以88%的牙牙效率提供初始放电容量131mAhg(-1)。在类似的条件下,未掺杂的尖晶石仅产生123毫安(-1),牙牙效率为81%。此外,掺杂尖晶石的循环稳定性随着C速率的增加而显着增加。在5℃下,即使在1000次循环之后,它表现出102mAhg(-1)的特定容量为98%的容量保留。此外,由于增强的锂离子扩散动力学,它表明了优异的速率能力。尖晶石的改善性能可归因于阳离子无序结构的稳定性。因此,SC掺杂的尖晶石可以是用于电动车辆应用的用于锂离子电池的潜在阴极材料。 (c)2019 Elsevier Ltd.保留所有权利。

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