Parker Stewart F, Walker Helen C, Callear Samantha K, Grünewald Elena, Petzold Tina, Wolf Dorit, Möbus Konrad, Adam Julian, Wieland Stefan D, Jiménez-Ruiz Mónica, Albers Peter W
ISIS Facility , STFC Rutherford Appleton Laboratory , Chilton , Didcot , OX11 0QX , UK . Email:
Evonik Resource Efficiency GmbH , Rodenbacher Chaussee 4 , D-63457 Hanau-Wolfgang , Germany.
Chem Sci. 2018 Oct 15;10(2):480-489. doi: 10.1039/c8sc03766c. eCollection 2019 Jan 14.
The relative amounts of hydrogen retained by a range of supported palladium catalysts have been investigated by a combination of electron microscopy and spectroscopic techniques, including incoherent inelastic neutron scattering. Contrary to expectation, the hydrogen capacity is not determined solely by the metal particle size, but it is a complex interaction between the particle size and its state of aggregation. The nature of the support is not only integral to the amount of hydrogen held by the catalyst, it also causes a marked difference in the rate of release of stored hydrogen from palladium. It is more difficult to fully dehydrogenate palladium on/in the porous activated carbon than on the non-porous carbon black based catalyst. The type of support also results in differences in the form of the residual hydrogen: whether it is α- or β-hydride phase, subsurface or in the threefold surface site. Our data on the supported catalysts reinforces what has only been seen previously with palladium black and our computational study provides confirmation of the empirical assignments. We also report the first vibrational spectroscopic study of hydrogen adsorbed at the surface of β-PdH and have observed for the first time hydrogen in the on-top site. This has enabled the relative proportion of bulk- to surface-H occupation in calculated model and in industrial nanoparticles to be estimated.
通过电子显微镜和光谱技术(包括非相干非弹性中子散射)相结合的方法,研究了一系列负载型钯催化剂保留氢的相对量。与预期相反,氢容量并非仅由金属颗粒大小决定,而是颗粒大小与其聚集状态之间的复杂相互作用。载体的性质不仅对催化剂所保留的氢量至关重要,还会导致钯中储存的氢释放速率出现显著差异。与基于无孔炭黑的催化剂相比,在多孔活性炭上/中的钯更难完全脱氢。载体类型还会导致残余氢形式的差异:是α-或β-氢化物相、次表面还是三重表面位点。我们关于负载型催化剂的数据强化了之前仅在钯黑中观察到的情况,并且我们的计算研究证实了经验性的归属。我们还报告了首次对吸附在β-PdH表面的氢进行的振动光谱研究,并首次观察到顶位的氢。这使得能够估计计算模型和工业纳米颗粒中体相氢与表面氢占据的相对比例。