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Influence of Zr dopant on microstructural and electrochemical properties of LiCoO2 thin film cathodes by RF sputtering

机译:Zr掺杂对LiCo2薄膜阴极微结构和电化学性能的影响RF溅射

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LiCoO2 thin film cathodes have been well established in Li-ion rechargeable batteries, however, its useful capacity hardly exceeds 50% of the theoretical value. Irreversible structural changes will occur upon exchange of Li ions i.e. 0.5 per unit formula limit, during intercalation/deintercalation reactions. Reportedly, lattice doping phenomenon has noticed an improvement in cyclability of LiCoO2. In this work, the influence of Zr doping on microstructural and electrochemical properties of RF magnetron sputtered LiCoO2 thin film cathodes have been presented. A series of LiZr(x)Co(1- x)O(2)( )thin films have been deposited on Au/Ti/SiO2/Si (100) substrates using a Zr-LiCoO2 mosaic target. All the films were deposited at optimized processing conditions. XRD and Raman spectroscopy measurements confirmed the hexagonal layered structure with R (3) over barm symmetry for Zr doped LiCoO2 film cathodes. The AFM reveals the estimated average grain size is around 50 nm. The cyclic voltammetry studies for these cathodes exhibit narrow potential peak separation of 24 mV and resulting highest diffusion coefficient ((D) over bar (Li)) of about 1.8 x 10(-11) cm(2)s(-1), respectively. These films exhibited a highest initial discharge capacity of 64.4 mu A h cm(-2) mu m(-1) with a capacity retention of 98.5% even after 25 cycles. In non-aqueous region, the cell exhibited an initial discharge capacity of about 65 mu A h cm(-2)mu m(-1) with good cycling stability even after 80 cycles, and is observed to be the more promising cathode candidate than the pristine LiCoO2 films.
机译:LiCoO2薄膜阴极在锂离子可充电电池中已经很好地建立,然而,其有用的容量几乎不超过理论值的50%。在锂离子的交换后,将发生不可逆的结构变化。每单位公式限制为0.5,在嵌入/脱嵌反应期间。据报道,格子掺杂现象已经注意到LiCoO2的可循环性的提高。在这项工作中,已经介绍了Zr掺杂对RF磁控溅射LiCoO2薄膜阴极的微观结构和电化学性质的影响。使用ZR-LiCoO2马赛克靶沉积在Au / Ti / SiO 2 / Si(100)底物上沉积了一系列Lizr(X)CO(1- X)O(2)()薄膜。所有薄膜都在优化的加工条件下沉积。 XRD和拉曼光谱测量测量证实了Zr掺杂LiCoO2薄膜阴极对ZrM对称性的六边形层状结构。 AFM揭示估计的平均粒度约为50nm。这些阴极的循环伏安法研究表现出24mV的窄电位峰分离,并导致分别为约1.8×10(-11)cm(2)厘米(2)厘米(2)厘米(2)厘米(2)厘米(-1)的最高扩散系数((d)) 。这些薄膜的最高初始放电容量为64.4μmHcm(-2)mu m(-1),其均匀的容量保留为98.5%,即使在25次循环后也是如此。在非水区中,该电池表现出约65μmHcm(-2)mu m(-1)的初始放电容量,即使在80次循环之后,也具有良好的循环稳定性,并且被观察到是更有前途的阴极候选者原始LiCoO2薄膜。

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