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Thin films of lithium manganese oxide spinel as cathode materials for secondary lithium batteries

机译:锂锰氧化物尖晶石薄膜作为二次锂电池的正极材料

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The miniaturization of rechargeable lithium-ion batteries requires high quality thin-film electrodes. Electrostatic spray deposition (ESD) technique was used to fabricate LiMn{sub}2O{sub}4 thin-film electrodes with three different morphologies: sponge-like porous, fractal-like porous, and dense structures. X-ray diffraction (XRD) and scanning electron microscopy were used to analyze the structures of the electrodes. These electrodes were made into coin cells against metallic lithium for electrochemical characterization. Galvanostatic cycling of the cells revealed different rate capability for the cells with LiMn{sub}2O{sub}4 electrodes of different morphologies. It is found that the cells with LiMn{sub}2O{sub}4 electrodes of porous, especially the sponge-like porous, morphology better rate capability than those with dense LiMn{sub}2O{sub}4 electrodes. Electrochemical impedance spectroscopy (EIS) study indicates that the large surface area of the porous electrodes should be attributed to the smaller interfacial resistance and better rate capability.
机译:可再充电锂离子电池的小型化需要高质量的薄膜电极。静电喷涂(ESD)技术用于制造LiMn {sub} 2O {sub} 4薄膜电极,该电极具有三种不同的形态:海绵状多孔,分形状多孔和致密结构。 X射线衍射(XRD)和扫描电子显微镜被用来分析电极的结构。将这些电极制成针对金属锂的纽扣电池,以进行电化学表征。细胞的恒电流循环显示具有不同形态的LiMn {sub} 2O {sub} 4电极的电池具有不同的速率能力。发现具有多孔LiMn {sub} 2O {sub} 4电极的电池,特别是海绵状多孔电池,其形态学速率比具有密集LiMn {sub} 2O {sub} 4电极的电池具有更好的速率性能。电化学阻抗谱(EIS)研究表明,多孔电极的大表面积应归因于较小的界面电阻和更好的倍率能力。

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