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Oxygen Gateway Effect of CeO2/La2O2SO4 Composite Oxygen Storage Materials

机译:CeO2 / La2O2SO4复合储氧材料的氧通道效应

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摘要

A synergistic enhancement in oxygen release/storage performance was achieved with composites formed between CeO2 as an oxygen gateway and La2O2SO4 as an oxygen reservoir. CeO2 smoothly transfers oxygen atoms between La2O2SO4 and the gas phase, whereas La2O2SO4 stores a large amount of oxygen. The composite materials exhibited enhanced anaerobic CO oxidation and reversible oxygen storage in the presence of impregnated Pt catalysts as compared to their individual constituents (Pt/CeO2 and Pt/La2O2SO4). In situ X-ray diffraction and Raman experiments demonstrated that CeO2 significantly accelerated the redox reaction between La2O2SO4 (S6+) and La2O2S (S2–), while preserving its structure. The reaction between CO and CeO2/18O-labeled La2O2SO4 composites suggested that CO mainly reacted with the lattice oxygen atoms of CeO2, and the resulting oxygen vacancies were subsequently filled with oxygen atoms supplied by La2O2SO4. This oxygen gateway effect of CeO2 greatly enhanced the oxygen release/storage rates of La2O2SO4, while maintaining thehigh oxygen storage capacity, which is an advanced feature of oxysulfatematerials. The synergistic effect is mostly pronounced when the twodifferent oxygen storage materials are in intimate contact to forma three-phase boundary.
机译:通过使用CeO2作为氧气通道和La2O2SO4作为氧气储存器之间形成的复合物,可以实现氧气释放/存储性能的协同增强。 CeO2可以在La2O2SO4和气相之间平稳地转移氧原子,而La2O2SO4则可以存储大量的氧。与它们的单独成分(Pt / CeO2和Pt / La2O2SO4)相比,在浸渍的Pt催化剂存在下,复合材料显示出增强的厌氧性CO氧化和可逆的氧气存储。原位X射线衍射和拉曼实验表明,CeO2显着促进了La 2 O 2 SO 4 (S 6 + )和La 2 O 2 S(S 2 – ),同时保留其结构。 CO与CeO 2 / 18 O标记的La 2 O 2 SO 4 < / sub>复合材料表明,CO主要与CeO 2 的晶格氧原子反应,随后产生的氧空位被La 2 O 2 SO 4 。 CeO 2 的这种氧气通道效应大大提高了La 2 O 2 SO 4 的氧气释放/存储速率,同时保持高储氧量,这是硫酸氧的高级功能材料。两者之间的协同效应最为明显不同的储氧材料紧密接触形成三相边界。

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