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Investigation of Solid Oxide Electrolysis Cell Electrodes for Methane Synthesis

机译:甲烷合成固体氧化物电解槽电极研究

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Methane-synthesis solid oxide electrolysis cell (MS-SOEC) technology has potential to provide efficient renewable energy storage systems. However, there are few studies focusing on MS-SOEC electrode materials. In this study, several materials were tested experimentally. As anode materials, La_(0.6)Sr_(0.4)MnO_(3-δ) (LSM), La_(0.6)Sr_(0.4)Co_(0.2)Fe_(0.8)O_(3-δ)-Ce_(0.8)Sm_(0.2)O_(1.9) composite (LSCF-SDC) and platinum were compared. The cell with LSCF-SDC exhibited lower overpotentials and higher stability than LSM. Platinum showed even better performance than LSCF-SDC. Ni-SDC was used for the cathode, and the cathode outlet gas compositions were analyzed for several operation temperatures and current densities. It was found that catalytic activity for methanation was enhanced under polarized conditions. Effects of ruthenium addition to the cathode were also examined. Impedance analysis combined with gas composition measurements revealed high electrochemical activity of ruthenium, while methane production was suppressed possibly due to methane reforming reactions promoted by ruthenium.
机译:甲烷合成固体氧化物电解槽(MS-SOEC)技术具有提供有效的可再生能源存储系统的潜力。然而,很少有研究专注于MS-SOEC电极材料。在这项研究中,通过实验测试了几种材料。作为阳极材料,LA_(0.6)SR_(0.4)MNO_(3-Δ)(LSM),LA_(0.6)SR_(0.4)CO_(0.2)FE_(0.8)O_(3-Δ)-CE_(0.8)SM_ (0.2)O_(1.9)复合(LSCF-SDC)和铂。具有LSCF-SDC的细胞表现出低于LSM的过电位和更高的稳定性。铂金表现出比LSCF-SDC更好的性能。 Ni-SDC用于阴极,分析阴极出口气体组合物用于几种操作温度和电流密度。发现在偏振条件下提高了甲烷化的催化活性。还研究了钌加入阴极的影响。阻抗分析与气体成分测量相结合,揭示了钌的高电化学活性,而甲烷产量可能由于钌促进的甲烷重整反应而受到抑制。

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