首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Bulk transport and oxygen surface exchange of the mixed ionic-electronic conductor Ce_(1-x)Tb_xO_(2-δ) (x = 0.1,0.2,0.5)
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Bulk transport and oxygen surface exchange of the mixed ionic-electronic conductor Ce_(1-x)Tb_xO_(2-δ) (x = 0.1,0.2,0.5)

机译:混合离子电子导体Ce_(1-x)Tb_xO_(2-δ)的体传输和氧表面交换(x = 0.1,0.2,0.5)

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摘要

Bulk ionic and electronic transport properties and the rate of oxygen surface exchange of Tb-doped ceria have been evaluated as a function of Tb concentration, aiming to assess the potential use of the materials as high-temperature oxygen-transport membranes and oxygen reduction catalysts. The materials were synthesized by the co-precipitation method. Cobalt oxide (2 mol%) was added in order to improve sinterability and conductivity. The materials were studied by means of X-ray diffraction (XRD), temperature-programmed desorption (TPD), thermogravimetry (TG), DC-conductivity and UV-vis spectrophotometry. The results indicate that the extent of mixed ionic-electronic conductivity is a function of temperature and can be tuned by modifying the Tb-(and Co-doping) concentration. Low Tb-content materials (x = 0.1 and 0.2) are predominant ionic conductors, but the materials with 50 mol% Tb show both p-type electronic and ionic conductivity. The enhanced electronic conduction in Ce_(0.5)Tb_(0.5)O_(2-δ) is associated with narrowing of the band gap upon doping ceria with Tb. In addition, the surface chemistry of the samples was investigated by means of X-ray photoeiectron spectroscopy (XPS) and pulse isotopic exchange (PIE). The surface exchange rate is found to increase on increasing the level of Tb doping. The highest surface exchange rates in this study are found for materials doped with 50 mol% Tb.
机译:已经评估了掺杂Tb的二氧化铈的整体离子和电子传输性能以及氧表面交换速率,作为Tb浓度的函数,旨在评估该材料作为高温氧气传输膜和氧气还原催化剂的潜在用途。通过共沉淀法合成材料。为了改善烧结性和导电性,添加氧化钴(2摩尔%)。通过X射线衍射(XRD),程序升温脱附(TPD),热重分析(TG),直流电导率和紫外可见分光光度法对材料进行了研究。结果表明,离子电导率的混合程度是温度的函数,可以通过改变Tb-(和Co-掺杂)浓度来调节。低Tb含量的材料(x = 0.1和0.2)是主要的离子导体,但是具有50 mol%Tb的材料同时显示p型电子和离子导电性。 Ce_(0.5)Tb_(0.5)O_(2-δ)中增强的电子传导与Tb掺杂二氧化铈时带隙变窄有关。此外,还通过X射线光电子光谱(XPS)和脉冲同位素交换(PIE)研究了样品的表面化学性质。发现表面交换速率随着Tb掺杂水平的增加而增加。对于掺有50 mol%Tb的材料,发现该表面交换速率最高。

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