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Probing surface oxide formations on SiO2-supported platinum nanocatalysts under CO oxidation

机译:在CO氧化下探测SiO 2 负载的铂纳米催化剂上的表面氧化物形成

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Formations of an ultrathin oxide layer on noble metal catalysts affect the characteristics of fundamental molecular behaviours such as adsorption, diffusion, and desorption on their surfaces. That is directly correlated to enhancement of catalytic activity under operating conditions because the kinetics of catalytic reactions are also simultaneously influenced. Especially, a sub-monolayered surface oxide is known as having a key role for improving catalytic activity, but revealing its existence in catalysis is challenging due to their fast chemical conversion. Herein, we report the first evidence of surface oxide formations on platinum (Pt) nanocatalysts under CO oxidation probed with a diffuse reflectance infrared Fourier transform (DRIFT) technique. Spectroscopic information demonstrates that the abrupt blue shift of adsorbed CO molecules vibrational frequencies of CO stretching mode on the reduced Pt nanocatalyst surface is initiated prior to aggressive CO conversion to CO2 gas molecules. Site-specific replacements of the adsorbed CO molecule with dissociative oxygen occur just before the ignition temperature that is supposed to be an important reaction step for CO oxidation over a Pt nanocatalyst. Density functional theory (DFT) calculation results support this phenomenon as a function of relative atomic fractions between CO and O on a Pt model surface and consistently show a similar trend with experimental evidence.
机译:贵金属催化剂上超薄氧化物层的形成影响基本分子行为的特征,例如其表面上的吸附,扩散和解吸。这与操作条件下催化活性的增强直接相关,因为催化反应的动力学也同时受到影响。特别地,已知亚单层表面氧化物具有改善催化活性的关键作用,但是由于其快速的化学转化,揭示其在催化中的存在是具有挑战性的。在本文中,我们报道了用扩散反射红外傅里叶变换(DRIFT)技术探测的在CO氧化作用下铂(Pt)纳米催化剂上表面氧化物形成的第一个证据。光谱信息表明,吸附的CO分子在还原的Pt纳米催化剂表面上的CO拉伸模式的振动频率突然蓝移是在CO被积极地转化为CO 2 气体分子之前引发的。刚好在着火温度之前发生了离解性氧对吸附的CO分子的位点置换,这被认为是在Pt纳米催化剂上进行CO氧化的重要反应步骤。密度泛函理论(DFT)的计算结果支持了该现象,该现象是Pt模型表面上CO和O之间的相对原子分数的函数,并且与实验证据一致地显示出相似的趋势。

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