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Hydrodeoxygenation of Phenol over Pd Catalysts. Effect of Support on Reaction Mechanism and Catalyst Deactivation

催化作用 加氢脱氧 化学 互变异构体 苯酚 环己酮 吸附 光化学 无机化学 反应机理 选择性 药物化学 有机化学
作者
Priscilla M. de Souza,Raimundo C. Rabelo‐Neto,Luiz Eduardo Pizarro Borges,Gary Jacobs,Burtron H. Davis,Daniel E. Resasco,F.B. Noronha
出处
期刊:ACS Catalysis 卷期号:7 (3): 2058-2073 被引量:182
标识
DOI:10.1021/acscatal.6b02022
摘要

This work investigates the effect of the type of support (SiO2, Al2O3, TiO2, ZrO2, CeO2, and CeZrO2) on the performance of Pd-based catalysts for the hydrodeoxygenation of phenol at 573 K using a fixed-bed reactor. Product distribution is significantly affected by the type of support. Benzene was the major product over Pd/TiO2 and Pd/ZrO2; on the other hand, cyclohexanone was the main compound over Pd/SiO2, Pd/Al2O3, Pd/CeO2, and Pd/CeZrO2. A reaction mechanism based on the tautomerization of phenol was proposed on the basis of DRIFTS experiments and catalytic tests with the intermediate products. The high selectivity to benzene over Pd/TiO2 and Pd/ZrO2 catalysts is likely due to the oxophilic sites of this support represented by incompletely coordinated Ti4+ and Zr4+ cations in close proximity to the periphery of metal particles. The greater interaction between oxygen in the keto-tautomer intermediate with oxophilic sites promotes the selective hydrogenation of C═O bond. Pd/SiO2, Pd/Al2O3, Pd/TiO2, and Pd/ZrO2 catalysts significantly deactivated during TOS. However, Pd/CeO2 and Pd/CeZrO2 were more stable, and only slight losses in activity were observed. Carbon deposits were not detected by Raman spectroscopy after reaction. DRIFTS experiments under reaction conditions revealed a buildup of phenoxy and intermediate species during reaction. These species remained adsorbed on the Lewis acid sites, blocking those sites and inhibiting further reactant adsorption. The growth of Pd particle size and the reduction in acid site density during HDO of phenol were the primary routes of catalyst deactivation. The higher stability of Pd/CeO2 and Pd/CeZrO2 catalysts is likely due to the higher amount of oxygen vacancies of these supports.
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