Influence of the interaction between alkaline earth and rare earth metal oxides on OCM reaction: elucidating the impact of different loading steps
Abstract
This study systematically investigated the effects of Ca/La2O3- and La/CaO-supported catalysts with different loading steps on the active sites and catalytic OCM performance. Ca/La2O3 and La/CaO exhibited good catalytic OCM performance in the low-temperature (500–550 °C) and high-temperature (≥700 °C) ranges, respectively, given that loading CaO onto the La2O3 surface leads to a greater abundance of moderate and strong basic sites and low-temperature easily desorbable reactive oxygen species, although the basicity of La/CaO is stronger than that of Ca/La2O3. The strong interaction between CaO and La2O3 and the conductivity of their respective oxides are key factors determining their low-temperature catalytic OCM performance, while their high-temperature catalytic performance is influenced by the mobility of oxygen ions. Multiple characterization methods combined with DFT theoretical calculations demonstrated that O22− is the active site for the low-temperature catalytic performance on Ca/La2O3. This is attributed to the relatively low reaction energy barriers for activating oxygen molecules to O22− and activating methane with O22− on the Ca/La2O3 (001) surface at low temperatures. On the other hand, O2− constitutes the active site for the high-temperature OCM on La/CaO, given that the La/CaO (100) surface is more prone to activating oxygen molecules to O2− and since the energy barrier for activating methane with O2− is minimal at high temperatures. The surface lattice oxygen species (O2−) leads to the deep oxidation of methane. This work provides theoretical guidance for the development of low-temperature or high-temperature OCM catalysts.

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