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Cycling Performance of NanocrystallineLiMn2O4Thin Films via Electrophoresis

机译:纳米LiMn2O4薄膜的电泳循环性能

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The present study demonstrates a novel approach by which titanium foils coated with LiMn2O4nanocrystals can be processed into a high-surface-area electrode for rechargeable batteries. A detailed study has been performed to elucidate how surface morphology and redox reaction behaviors underlying these electrodes impact the cyclic and capacity behavior. These nanocrystals were synthesized by in situ sintering and exhibited a uniform size of~55 nm. A direct deposition technique based on electrophoresis is employed to coat LiMn2O4nanocrystals onto titanium substrates. From the analysis of the relevant electrochemical parameters, an intrinsic correlation between the cyclability and particle size has been deduced and explained in accordance with the Li intercalation/deintercalation process. Depending on the particle size incorporated on these electrodes, it is seen that in terms of capacitance fading, for nanoparticles cyclability is better than their micron-sized counterparts. It has been shown that electrodes based on such nanocrystalline thin film system can allow significant room for improvement in the cyclic performance at the electrode/electrolyte interface.
机译:本研究表明了一种新颖的方法,通过该方法,可以将涂有LiMn2O4纳米晶体的钛箔加工成可充电电池的高表面积电极。已经进行了详细的研究,以阐明这些电极下面的表面形态和氧化还原反应行为如何影响循环和容量行为。这些纳米晶体是通过原位烧结合成的,具有约55〜nm的均匀大小。采用基于电泳的直接沉积技术将LiMn2O4纳米晶体涂覆到钛基板上。通过对相关电化学参数的分析,根据Li嵌入/脱嵌过程推导并解释了可循环性与粒度之间的内在联系。取决于结合在这些电极上的颗粒尺寸,可以看出,就电容衰减而言,纳米颗粒的可循环性优于其微米尺寸的对应物。已经表明,基于这种纳米晶体薄膜系统的电极可以为在电极/电解质界面处的循环性能的改善留有很大的余地。

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