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首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >Effects of sputtering conditions on the activities of high-performance CO2 methanation catalysts prepared by a co-sputtering technique using the polygonal barrel system
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Effects of sputtering conditions on the activities of high-performance CO2 methanation catalysts prepared by a co-sputtering technique using the polygonal barrel system

机译:溅射条件对使用多边形桶系统制备的高性能CO2甲烷化催化剂活性的影响

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摘要

This study investigated the effects of sputtering conditions on the activities of high-performance CO2 methanation catalysts prepared by a co-sputtering technique, employing a polygonal barrel apparatus. Average size of smaller Ru nanoparticles generated by co-sputtering Ru with TiO2 or ZrO2 varied with changes in the area ratio of the sputtering targets. The reaction temperature was decreased with decreases in the Ru particle size, and the most effective target area ratio was Ru:ZrO2 = 1:0.5 when co-sputtering Ru and ZrO2. For this optimized catalyst, increasing the sputtering time did not affect the Ru particle size but improved the catalytic activity. Small Ru particles were maintained even at a reaction temperature of 360 degrees C, indicating that undesirable decreases in catalytic activity due to particle growth can be suppressed using this co-sputtering technique. These highly active co-sputtered catalysts would have applications in systems intended for the reduction of CO2 emissions.
机译:本研究研究了溅射条件对采用多边形桶装置制备的高性能CO2甲烷化催化剂的活性的影响。通过与TiO 2或ZrO2的共溅射Ru产生的较小Ru纳米粒子的平均尺寸随着溅射靶的面积比的变化而变化。 Ru粒度的减少降低了反应温度,最有效的靶面积比是Ru:ZrO2 = 1:0.5,当共溅射Ru和ZrO2时。对于该优化的催化剂,增加溅射时间不影响Ru粒度但改善催化活性。即使在360℃的反应温度下也保持小Ru颗粒,表明可以使用该共溅射技术抑制由于颗粒生长引起的催化活性的不希望的降低。这些高活性的共溅射催化剂将在用于减少二氧化碳排放的系统中具有应用。

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