首页> 美国卫生研究院文献>Membranes >Correlation between Concentrations of Ni and Y in Y-Doped BaZrO3 Electrolyte in Co-Sintered Cells: A Case of Controlled NiO Activity by Using MgO-NiO Solid Solution as Anode Substrate
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Correlation between Concentrations of Ni and Y in Y-Doped BaZrO3 Electrolyte in Co-Sintered Cells: A Case of Controlled NiO Activity by Using MgO-NiO Solid Solution as Anode Substrate

机译:共烧结电池中掺Y的BaZrO3电解质中Ni和Y浓度之间的相关性:以MgO-NiO固溶体为阳极基质控制NiO活性的情况

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摘要

BaZr0.8Y0.2O3-δ (BZY20) is promising to be applied as an electrolyte in fuel cells, electrolysis cells, etc. However, when a half cell composed of a BZY20 electrolyte layer and a BZY20-NiO composite anode substrate is co-sintered (1400–1600 °C), Ni diffuses from the anode substrate into the electrolyte layer. Y content in the electrolyte layer decreases dramatically, since BZY20 cannot be equilibrated with NiO at such high temperature. Such Ni diffusion and Y loss are detrimental to the electrochemical performance of the electrolyte layer. In this work, we added MgO-NiO solid solution into the anode substrate to adjust the NiO activity (aNiO) during the co-sintering process, and used three different co-sintering methods to control the BaO activity (aBaO). The results revealed that by decreasing aNiO in the system, the as-co-sintered electrolyte layer had the composition shifting towards the direction of high Y and low Ni cation ratios. A clear correlation between the intra-grain concentration of Ni and Y was confirmed. In other words, to prepare the electrolyte with the same Y cation ratio, the Ni diffusion into the electrolyte layer can be suppressed by using the MgO-NiO solid solution with a high MgO ratio and a low Ni ratio. Moreover, by increasing aBaO, we found that the Y cation ratio increased and approached the nominal value of the pristine BZY20, when Mg1−xNixO (x = 0.3 and 0.5) was used. In summary, both aNiO and aBaO play important roles in governing the composition of the electrolyte layer prepared by the co-sintering process. To evaluate the quality of the electrolyte layer, both the intra-grain Y and Ni concentrations should be carefully checked.
机译:BaZr0.8Y0.2O3-δ(BZY20)有望在燃料电池,电解池等中用作电解质。但是,当由BZY20电解质层和BZY20-NiO复合阳极基板组成的半电池共烧结后(1400–1600°C),Ni从阳极基底扩散到电解质层中。由于在如此高的温度下BZY20无法与NiO平衡,因此电解质层中的Y含量急剧下降。这样的Ni扩散和Y损失对电解质层的电化学性能有害。在这项工作中,我们将MgO-NiO固溶体添加到阳极基板中以在共烧结过程中调节NiO活性(aNiO),并使用三种不同的共烧结方法来控制BaO活性(aBaO)。结果表明,通过减少体系中的aNiO,原态共烧结的电解质层的组成向高Y和低Ni阳离子比的方向偏移。证实了Ni和Y的晶粒内浓度之间存在明显的相关性。换句话说,为了制备具有相同Y阳离子比率的电解质,可以通过使用具有高MgO比率和低Ni比率的MgO-NiO固溶体来抑制Ni扩散到电解质层中。此外,通过增加aBaO,我们发现当使用Mg1-xNixO(x = 0.3和0.5)时,Y阳离子比率增加并接近原始BZY20的标称值。总之,aNiO和aBaO都在控制通过共烧结工艺制备的电解质层的组成中起重要作用。为了评估电解质层的质量,应仔细检查晶粒内的Y和Ni浓度。

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