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Promotion of Pt/CeO2 catalyst by hydrogen treatment for low-temperature CO oxidation

机译:氢处理促进Pt / CeO2催化剂低温CO氧化

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Low temperature CO oxidation reaction is known to be facilitated over platinum supported on a reducible cerium oxide. Pt species act as binding sites for reactant CO molecules, and oxygen vacancies on surface of cerium oxide atomically activate the reactant O _(2) molecules. However, the impacts of size of Pt species and concentration of oxygen vacancy at the surface of cerium oxide on the CO oxidation reaction have not been clearly distinguished, thereby various diverse approaches have been suggested to date. Here using the co-precipitation method we have prepared pure ceria support and infiltrated it with Pt solution to obtain 0.5 atomic% Pt supported on cerium oxide catalyst, and then systematically varied the size of Pt from single atom to ~1.7 nm sized nanoparticles and oxygen vacancy concentration at surface of cerium oxide by controlling the heat-treatment conditions, which are temperature and oxygen partial pressure. It is found that Pt nanoparticles in range of 1–1.7 nm achieve 100% of CO oxidation reaction at ~100 °C lower temperature compared to Pt single atom owing to the facile adsorption of CO but weaker binding strength between Pt and CO molecules, and the oxygen vacancy in the vicinity of Pt accelerates CO oxidation below 150 °C. Based on this understanding, we show that a simple hydrogen reduction at 550 °C for the single atom Pt supported on CeO _(2) catalyst induces the formation of highly dispersed Pt nanoparticles with size of 1.7 ± 0.2 nm and the higher concentration of surface oxygen vacancies simultaneously, enabling 100% conversion from CO to CO _(2) at 200 °C as well as 16% conversion even at 150 °C owing to the synergistic effects of Pt nanoparticles and oxygen vacancies.
机译:已知与负载在可还原氧化铈上的铂相比,低温CO氧化反应更容易进行。 Pt物种充当反应物CO分子的结合位点,并且氧化铈表面的氧空位原子地激活了反应物O _(2)分子。然而,尚未清楚地区分Pt物种的大小和氧化铈表面的氧空位浓度对CO氧化反应的影响,因此,迄今为止已提出了多种多样的方法。在这里,我们使用共沉淀法制备了纯二氧化铈载体,并用Pt溶液渗透,获得了0.5%(原子)的负载在氧化铈催化剂上的Pt,然后系统地将Pt的尺寸从单个原子改变为〜1.7 nm大小的纳米颗粒和氧气通过控制热处理条件,即温度和氧分压,可以使氧化铈表面的空位浓度升高。发现Pt纳米粒子在1-1.7 nm范围内比Pt单原子在〜100°C更低的温度下可实现100%的CO氧化反应,这是由于CO易于吸附,但Pt与CO分子之间的结合强度较弱,并且Pt附近的氧空位加速了150°C以下的CO氧化。基于这种理解,我们表明,在550°C上,对于CeO _(2)催化剂上负载的单原子Pt的简单氢还原反应会诱导形成高度分散的Pt纳米颗粒,其粒径为1.7±0.2 nm,且表面浓度较高由于Pt纳米粒子和氧空位的协同作用,因此可以同时实现氧空位,从而在200°C时实现100%从CO到CO _(2)的转化,甚至在150°C时也可以达到16%的转化。

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