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Structural and surface coverage effects on CO oxidation reaction over carbon-supported Pt nanoparticles studied by quadrupole mass spectrometry and diffuse reflectance FTIR spectroscopy

机译:四极杆质谱和漫反射FTIR光谱研究结构和表面覆盖对碳载Pt纳米颗粒上CO氧化反应的影响

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The CO oxidation reaction on carbon-supported Pt nanoparticles (average size of 2.8 to 7.7 nm) was studied under flowing conditions at atmospheric pressure and temperatures between 300 and 353 K by coupling quadrupole mass spectrometry (QMS) and diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS). The Pt loading was varied between 20 and 60 wt%. Gases diluted in He (0.5 mol%) were used together with Ar as a tracer. Reactions with CO and O-2 introduced separately onto the samples were studied by QMS, applying successive step changes of the reaction mixtures. Variations in the rate of the reactions were observed and correlated with changes of the calculated coverage of the Pt surface by CO and/or O adspecies at varying steps of the experiment. The transient reaction of CO(g) with adsorbed O (O-ad) was fast and mass transport-limited while that of O-2(g) with adsorbed CO (COad) was sluggish. Following the same experimental procedures, FTIR spectra of adsorbed CO after varying steps were recorded, confirming the variations of COad and O-ad as determined by QMS and indicating changes in the CO distribution over varying types of Pt surface sites. The influence of the adlayer composition (co-adsorption of COad and O-ad), the particle size/structure and some possible surface reconstruction effects on the CO oxidation rate were evidenced and discussed. The structure of the Pt nanoparticles supported on carbon appears as an important factor for the efficiency of the so-called O-2 bleeding as a CO mitigation strategy in polymer electrolyte membrane fuel cells.
机译:通过耦合四极杆质谱(QMS)和漫反射红外傅里叶变换光谱分析(QMS)在大气压力和温度在300至353 K之间的流动条件下研究了碳负载的Pt纳米颗粒(平均尺寸为2.8至7.7 nm)的CO氧化反应( DRIFTS)。 Pt负载量在20至60重量%之间变化。将稀释在He中的气体(0.5摩尔%)与Ar一起用作示踪剂。通过QMS研究了分别引入样品中的CO和O-2的反应,对反应混合物进行了连续变化。观察到反应速率的变化,并与在实验的不同步骤中由CO和/或O的化学式计算的Pt表面的覆盖率的变化相关。 CO(g)与吸附的O(O-ad)的瞬态反应快速且质量传输受限,而O-2(g)与吸附的CO(COad)的瞬态反应缓慢。遵循相同的实验步骤,记录了不同步骤后吸附的CO的FTIR光谱,确认了由QMS确定的COad和O-ad的变化,并表明了不同类型的Pt表面位点上CO分布的变化。证明并讨论了吸附层组成(COad和O-ad的共吸附),粒径/结构以及一些可能的表面重构对CO氧化速率的影响。负载在碳上的Pt纳米颗粒的结构似乎是影响所谓的O-2渗出效率的重要因素,而O-2渗出是聚合物电解质膜燃料电池中的CO缓解策略。

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