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首页> 外文期刊>CERAMICS INTERNATIONAL >The effect of dual-doping on the electrochemical performance of LiNi0.5Mn1.5O4 and its application in full-cell lithium-ion batteries
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The effect of dual-doping on the electrochemical performance of LiNi0.5Mn1.5O4 and its application in full-cell lithium-ion batteries

机译:双掺杂对LiNi0.5Mn1.5O4电化学性能的影响及其在全电池锂离子电池中的应用

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Dual improvement on electrochemical kinetics and lifespan of LiNi0.5Mn1.5O4 (LNMO) cathode material is of great significance for realizing high-power and durable lithium-ion batteries (LIBs). To achieve this goal, the Mg2+_Cr3+ co-doping LNMO microspheres were prepared via the coprecipitation route. FTIR, Raman spectra and magnetic susceptibility verify that both the Mg2+ and Cr3+ doping are beneficial for the formation of disordered Fd3m phase leading to the improvement of electronic conductivity and decrease in electrochemical polarization and the charge transfer resistance (Rct). Meanwhile, the doping also reduces the content of Mn3+ in LNMO which can diminish the dissolution of Mn3+ resulting in the enhancement of cycling life. As a result, the Mg2+_Cr3+ co-doping sample (MC-LNMO) exhibits an improved electrochemical performance (EP). A discharge capacity (DC) of 110.7 mAh/g at 10C can be obtained for MC-LNMO which is higher than that of pure LNMO (only 53 mAh/g) and after 200 cycles the capacity fade is only 4.6 at 25 nbsp;C. To further evaluate the MC-LNMO electrode for practical application, in this study, the full cells were also fabricated using the MC-LNMO as cathode and Li4Ti5O12 (LTO) as anode. In the combination, the full device exhibits high energy density (ED) and long cycle life due to the large difference in the working potential of LNMO (4.7 V) and LTO (1.55 V) and their excellent lifespan. These findings provide a simple and scalable method to boost the EP of LNMO, which can be used to fabricate high-quality LIBs.
机译:对LiNi0.5Mn1.5O4(LNMO)正极材料电化学动力学和寿命的双重改进,对于实现大功率、高耐久的锂离子电池(LIB)具有重要意义。为此,采用共沉淀途径制备了Mg2+_Cr3+共掺杂LNMO微球。傅里叶变换红外光谱、拉曼光谱和磁化率验证了Mg2+和Cr3+掺杂均有利于无序Fd3m相的形成,从而提高了电子电导率,降低了电化学极化和电荷转移电阻(Rct)。同时,掺杂还降低了LNMO中Mn3+的含量,从而减少了Mn3+的溶解,从而提高了循环寿命。结果,Mg2+_Cr3+共掺杂样品(MC-LNMO)表现出更好的电化学性能(EP)。MC-LNMO在10C时的放电容量(DC)为110.7 mAh/g,高于纯LNMO(仅53 mAh/g),循环200次后,容量衰减仅为4.6%,在25 C。为了进一步评估MC-LNMO电极的实际应用,本研究还以MC-LNMO为阴极,Li4Ti5O12(LTO)为阳极制备了完整的电池。在组合中,由于LNMO(4.7 V)和LTO (1.55 V)的工作电位差异很大,因此整个器件表现出高能量密度(ED)和长循环寿命,并且具有出色的使用寿命。这些发现提供了一种简单且可扩展的方法来增强LNMO的EP,可用于制造高质量的LIBs。

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