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首页> 外文期刊>Electrochimica Acta >Electrochemical characterization of amorphous LiFe(WO{sub}4){sub}2 thin films as positive electrodes for rechargeable lithium batteries
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Electrochemical characterization of amorphous LiFe(WO{sub}4){sub}2 thin films as positive electrodes for rechargeable lithium batteries

机译:非晶态LiFe(WO {sub} 4){sub} 2薄膜作为可充电锂电池正极的电化学表征

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摘要

Amorphous LiFe(WO{sub}4){sub}2 thin films have been fabricated by radio-frequency (R.F.) sputtering deposition at room temperature. The as-deposited and electrochemically cycled thin films are, respectively, characterized by X-ray diffraction, scanning electron microscopy, transmission electron microscopy, selected area electron diffraction, and X-ray photoelectron spectra techniques. An initial discharge capacity of 198mAh/g in Li/LiFe(WO{sub}4){sub}2 cells is obtained, and the electrochemical behavior is mostly preserved in the following cycling. These results identified the electrochemical reactivity of two redox couples, Fe{sup}(3+)/Fe{sup}(2+) and W{sup}(6+)/W{sup}(x+) (x = 4 or 5). The kinetic parameters and chemical diffusion coefficients of Li intercalation/deintercalation are estimated by cyclic voltammetry and alternate-current (AC) impedance measurements. All-solid-state thin film lithium batteries with Li/LiPON/LiFe(WO{sub}4){sub}2 layers are fabricated and show high capacity of 104μAh/cm{sup}2 μm in the first discharge. As-deposited LiFe(WO{sub}4){sub}2 thin film is expected to be a promising positive electrode material for future rechargeable thin film batteries due to its large volumetric rate capacity, low-temperature fabrication and good electrode/electrolyte interface.
机译:非晶态的LiFe(WO {sub} 4){sub} 2薄膜是通过在室温下通过射频(RF)溅射沉积法制成的。分别通过X射线衍射,扫描电子显微镜,透射电子显微镜,选择区域电子衍射和X射线光电子能谱技术表征沉积的和电化学循环的薄膜。 Li / LiFe(WO {sub} 4){sub} 2电池的初始放电容量为198mAh / g,在随后的循环中大部分保留了电化学行为。这些结果确定了两个氧化还原对Fe {sup}(3 +)/ Fe {sup}(2+)和W {sup}(6 +)/ W {sup}(x +)的电化学反应性(x = 4或5)。 Li嵌入/脱嵌的动力学参数和化学扩散系数通过循环伏安法和交流(AC)阻抗测量来估算。制备了具有Li / LiPON / LiFe(WO {sub} 4){sub} 2层的全固态薄膜锂电池,并在首次放电中表现出104μAh/ cm {sup} 2μm的高容量。沉积态的LiFe(WO {sub} 4){sub} 2薄膜由于其大容量容量,低温制造和良好的电极/电解质界面,有望成为未来可充电薄膜电池的有希望的正极材料。 。

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