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More Cu, more problems: Decreased CO2 conversion ability by Cu-doped La0.75Sr0.25FeO3 perovskite oxides

机译:更多的铜,更多的问题:掺杂铜的La0.75Sr0.25FeO3钙钛矿氧化物降低了CO2转化能力

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The effect of Cu doping on the conversion of CO2 to CO was investigated on H-2-reduced La0.75Sr0.25FeO3 perovskite oxides. Six La0.75Sr0.25Fe1-gamma Cu gamma O3 perovskites, labeled Cu100*Y (with Y = 0, 0.10, 0.25, 0.50, 0.75, and 1) were synthesized and characterized through X-ray diffraction (XRD), temperature-programmed oxygen vacancy formation, and temperature-programmed reduction (TPR). The incorporation of Cu facilitates the formation of oxygen vacancies at lower temperatures but also increased the instability of the perovskite. DFT simulations suggested that the Cub sample is favored to produce oxygen vacancies compared to Cu0 and Cu25 samples, which was consistent with experimental oxygen vacancy formation results. For the Cu0, Cu10, and Cu25 samples, temperature-programmed CO2 conversion (TPO-CO2) after isothermal H-2-reduction at 450 degrees C and post-reduction XRD were performed to evaluate the ability of the materials to convert CO2 at low temperatures and to identify the crystalline phases active in the reaction. The peak conversion of CO2 to CO was achieved 30 degrees C lower on the Cu10 sample versus the Cu0, but less CO was produced, due to a decreased re-oxidation activity of the Cu-doped samples. CO production was inhibited in the Cu25 sample, likely due to a combined effect of poor CO2 dissociative chemisorption energies on metallic Cu and increased thermodynamic stability of the oxygen vacant perovskites. Control experiments (Cu deposited onto La0.75Sr0.25FeO3) indicated the stability of the copper-containing perovskite oxides phases was the primary limiting factor preventing CO formation from CO2. (C) 2015 Elsevier B.V. All rights reserved.
机译:在H-2还原的La0.75Sr0.25FeO3钙钛矿氧化物上研究了Cu掺杂对CO2转化为CO的影响。合成了六种标记为Cu100 * Y的La0.75Sr0.25Fe1-γCu CuγO3钙钛矿(Y = 0、0.10、0.25、0.50、0.75和1)并通过X射线衍射(XRD)进行了温度编程氧空位的形成和程序升温还原(TPR)。 Cu的掺入有助于在较低温度下氧空位的形成,但也增加了钙钛矿的不稳定性。 DFT模拟表明,与Cu0和Cu25样品相比,Cub样品更倾向于产生氧空位,这与实验中的氧空位形成结果一致。对于Cu0,Cu10和Cu25样品,进行了在450℃下等温H-2-还原和后还原XRD后的程序升温CO2转化率(TPO-CO2),以评估材料在低温下转化CO2的能力。并确定反应中有活性的结晶相。与Cu0相比,Cu10样品的CO2转化为CO的峰值转化率要低30摄氏度,但是由于掺杂Cu的样品的再氧化活性降低,因此生成的CO更少。 Cu25样品中的CO生成受到抑制,这可能是由于不良的CO2分解化学吸附能对金属Cu以及氧气空位钙钛矿的热力学稳定性提高的共同作用。对照实验(Cu沉积在La0.75Sr0.25FeO3上)表明,含铜钙钛矿氧化物相的稳定性是阻止CO2由CO2形成的主要限制因素。 (C)2015 Elsevier B.V.保留所有权利。

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