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Accessing Valuable Ligand Supports for Transition Metals: A Modified, Intermediate Scale Preparation of 1,2,3,4,5-Pentamethylcyclopentadiene
Published on: March 20, 2017
Transition metal modified cordierite for anthracene removal and low-cost exhaust microcontaminant control
Wiktor Pacura1, Jerzy Górecki2, Estelle Marie M Vanhaecke3
1The Department of Renewable Energy and Environmental Research, Division of Bioenergy Conversion Technology, Mineral and Energy Economy Research Institute of the Polish Academy of Sciences (MEERI PAS), Krakow, Poland. Wiktor.Pacura@meeri.pl.
Abstract:
Unregulated micro-contaminants such as polycyclic aromatic hydrocarbons (PAHs) from gasoline vehicles pose increasing environmental and health risks. In this study, cordierite granules were thermally pretreated, acid-activated and modified with transition metal oxides (CuO, Fe₂O₃, MnO₂) by wet impregnation and calcination at 600 °C, producing well-defined oxide coatings confirmed by TGA/DSC and SEM/EDS analyses. A custom-built test rig introduced anthracene vapor (200 µg at 300 °C, 60 mL min⁻¹) through a fixed bed of the modified cordierite, and the downstream Tenax trap was analyzed by GC-MS to quantify removal efficiency. Surface characterization revealed uniform CuO and Fe₂O₃ distributions but agglomerated MnO₂ with residual chlorine, correlating strongly with catalytic performance. Copper- and iron-modified cordierite achieved up to 25.3% and 18.2% net anthracene removal respectively, while MnO₂ was markedly less effective. These results demonstrate that low-cost, non-noble metal coatings can enhance PAH capture and partial oxidation in exhaust-like conditions and provide a mechanistic basis for developing sustainable emission control materials. These findings highlight the potential of non-noble metal oxide coatings for enhancing PAH mitigation in exhaust systems and provide a foundation for future application-oriented development of sustainable emission control materials.

