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Development by Mechanochemistry of La0.8Sr0.2Ga0.8Mg0.2O2.8 Electrolyte for SOFCs

机译:机械化学方法开发用于燃料电池的La0.8Sr0.2Ga0.8Mg0.2O2.8电解质

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摘要

In this work, a mechanochemical process using high-energy milling conditions was employed to synthesize La Sr Ga Mg O (LSGM) powders from the corresponding stoichiometric amounts of La O , SrO, Ga O , and MgO in a short time. After 60 min of milling, the desired final product was obtained without the need for any subsequent annealing treatment. A half solid oxide fuel cell (SOFC) was then developed using LSGM as an electrolyte and La Sr MnO (LSM) as an electrode, both obtained by mechanochemistry. The characterization by X-ray diffraction of as-prepared powders showed that LSGM and LSM present a perovskite structure and pseudo-cubic symmetry. The thermal and chemical stability between the electrolyte (LSGM) and the electrode (LSM) were analyzed by dynamic X-ray diffraction as a function of temperature. The electrolyte (LSGM) is thermally stable up to 800 and from 900 °C, where the secondary phases of LaSrGa O and LaSrGaO appear. The best sintering temperature for the electrolyte is 1400 °C, since at this temperature, LaSrGaO disappears and the percentage of LaSrGa O is minimized The electrolyte is chemically compatible with the electrode up to 800 °C. The powder sample of the electrolyte (LSGM) at 1400 °C observed by HRTEM indicates that the cubic symmetry Pm-3m is preserved. The SOFC was constructed using the brush-painting technique; the electrode–electrolyte interface characterized by SEM presented good adhesion at 800 °C. The electrical properties of the electrolyte and the half-cell were analyzed by complex impedance spectroscopy. It was found that LSGM is a good candidate to be used as an electrolyte in SOFC, with an Ea value of 0.9 eV, and the LSM sample is a good candidate to be used as cathode.
机译:在这项工作中,使用高能研磨条件的机械化学过程被用于在短时间内从相应的化学计量的La O,SrO,Ga O和MgO合成La Sr Ga Mg O(LSGM)粉末。研磨60分钟后,无需任何后续退火处理即可获得所需的最终产品。然后使用LSGM作为电解质和La Sr MnO(LSM)作为电极开发了半固态氧化物燃料电池(SOFC),两者都是通过机械化学方法获得的。通过制备的粉末的X射线衍射表征表明,LSGM和LSM呈现钙钛矿结构和拟立方对称性。通过动态X射线衍射分析电解质(LSGM)和电极(LSM)之间的热稳定性和化学稳定性随温度的变化。电解质(LSGM)在高达800和900°C的温度下均具有热稳定性,其中会出现LaSrGa O和LaSrGaO的次级相。电解质的最佳烧结温度为1400°C,因为在此温度下,LaSrGaO消失并且LaSrGa O的百分比最小化。该电解质在最高800°C的温度下与电极化学相容。 HRTEM在1400°C下观察到的粉末电解质样品(LSGM)表明保留了立方对称Pm-3m。 SOFC是使用画笔绘画技术构建的; SEM表征的电极-电解质界面在800°C时表现出良好的附着力。通过复数阻抗谱分析电解质和半电池的电性能。发现LSGM是用作SOFC中的电解质的良好候选者,Ea值为0.9eV,并且LSM样品是用作阴极的良好候选者。

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