Usoltsev Oleg, Stoian Dragos, Skorynina Alina, Kozyr Elizaveta, Njoroge Peter N, Pellegrini Riccardo, Groppo Elena, van Bokhoven Jeroen A, Bugaev Aram
ALBA Synchrotron, Cerdanyola del Valles, Barcelona, 08290, Spain.
The Swiss-Norwegian Beamlines (SNBL) at ESRF, BP 220, Grenoble, 38043, France.
Small. 2024 Oct;20(42):e2401184. doi: 10.1002/smll.202401184. Epub 2024 Jun 17.
An interplay between Pd and PdO and their spatial distribution inside the particles are relevant for numerous catalytic reactions. Using in situ time-resolved X-ray absorption spectroscopy (XAS) supported by theoretical simulations, a mechanistic picture of the structural evolution of 2.3 nm palladium nanoparticles upon their exposure to molecular oxygen is provided. XAS analysis revealed the restructuring of the fcc-like palladium surface into the 4-coordinated structure of palladium oxide upon absorption of oxygen from the gas phase and formation of core@shell Pd@PdO structures. The reconstruction starts from the low-coordinated sites at the edges of palladium nanoparticles. Formation of the PdO shell does not affect the average Pd‒Pd coordination numbers, since the decrease of the size of the metallic core is compensated by a more spherical shape of the oxidized nanoparticles due to a weaker interaction with the support. The metallic core is preserved below 200 °C even after continuous exposure to oxygen, with its size decreasing insignificantly upon increasing the temperature, while above 200 °C, bulk oxidation proceeds. The Pd‒Pd distances in the metallic phase progressively decrease upon increasing the fraction of the Pd oxide due to the alignment of the cell parameters of the two phases.
钯与氧化钯之间的相互作用及其在颗粒内部的空间分布与众多催化反应相关。通过理论模拟支持的原位时间分辨X射线吸收光谱(XAS),提供了2.3纳米钯纳米颗粒暴露于分子氧时结构演变的机理图。XAS分析表明,当从气相吸收氧气并形成核壳结构的Pd@PdO结构时,类面心立方结构的钯表面会重构为氧化钯的4配位结构。重构从钯纳米颗粒边缘的低配位位点开始。氧化钯壳层的形成不会影响钯-钯的平均配位数,因为金属核尺寸的减小被氧化纳米颗粒更球形的形状所补偿,这是由于与载体的相互作用较弱。即使持续暴露于氧气中,金属核在200°C以下仍能保留,其尺寸随温度升高而略有减小,而在200°C以上则会发生体相氧化。由于两相晶胞参数的对齐,随着氧化钯比例的增加,金属相中钯-钯的距离逐渐减小。