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Understanding the Activation of ZSM-5 by Phosphorus: Localizing Phosphate Groups in the Pores of Phosphate-Stabilized ZSM-5

机译:了解磷对 ZSM-5 的活化:磷酸盐稳定 ZSM-5 孔隙中的磷酸基团定位

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摘要

Fluid catalytic cracking (FCC) produces (the feedstock for) a major part of the world’s fuels, as well as chemical building blocks for, for example, polymers, pharmaceuticals, and specialty materials. ZSM-5 is the active ingredient in propylene-selective FCC catalyst systems and is stabilized or activated with phosphorus compounds. Despite this process being one of the largest-scale industrially applied catalytic processes, there is still considerable debate on the mechanism of activation, as well as on the interaction between phosphate and zeolite aluminum species. In this work, we use synchrotron-based powder XRD, neutron diffraction, and subsequent pair distribution function analysis to unequivocally corroborate the activation mechanism of phosphorus-based promotion in FCC catalysis and localize the phosphate groups inside the pore system of P-activated ZSM-5. We find local disorder in the zeolite T–O coordination, which could not be observed with traditional XRD analyses. Furthermore, we support these experimental findings with full periodic quantum-mechanical modeling (QMM) of the highly relevant, but often overlooked, combination of dealumination by hydrolysis (steaming) and phosphatation of the zeolite framework. We thereby show that phosphate can react with partially dislodged aluminum species that remain stable and are still tethered to their original framework position. Finally, by assessing all available literature postulations by the same periodic QMM and comparing them energetically with our obtained results, we can conclude that by accounting for the highly relevant inclusion of steaming prior to phosphatation, the two models resulting from this work rank among the three most relevant remaining models. This combined experimental and theoretical work fundamentally explains the activation and promotion mechanism of one of the world’s most applied chemical processes—propylene-selective FCC.
机译:流化催化裂化 (FCC) 生产(原料)世界燃料的主要部分,以及聚合物、药品和特种材料等化学构件。ZSM-5是丙烯选择性催化裂化裂化催化剂体系中的活性成分,可与磷化合物稳定或活化。尽管该过程是工业应用最大规模的催化过程之一,但关于活化机制以及磷酸盐和沸石铝物种之间的相互作用仍然存在相当大的争论。本文利用基于同步加速器的粉末XRD、中子衍射和随后的对分布函数分析,明确证实了磷基促进催化裂化反应催化的活化机理,并定位了P活化ZSM-5孔系统内的磷酸基团。我们发现沸石T-O配位存在局部无序,这是传统XRD分析无法观察到的。此外,我们通过高度相关但经常被忽视的沸石骨架水解(蒸汽)脱铝和磷化脱铝的全周期量子力学建模 (QMM) 来支持这些实验发现。因此,我们表明磷酸盐可以与部分脱落的铝物种发生反应,这些铝物种保持稳定并且仍然拴在其原始框架位置上。最后,通过相同的周期性QMM评估所有可用的文献假设,并将它们与我们获得的结果进行有力的比较,我们可以得出结论,通过考虑在磷酸化之前高度相关的蒸汽,这项工作产生的两个模型跻身于三个最相关的剩余模型中。这项实验和理论工作相结合,从根本上解释了世界上应用最广泛的化学过程之一——丙烯选择性催化裂化机制的活化和促进机制。

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