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DOE OSTI · 2338175

Optimizing hierarchical membrane/catalyst systems for oxidative coupling of methane using additive manufacturing

Abstract

The advantage of a membrane/catalyst system in oxidative coupling of methane (OCM) compared to conventional reactive systems is that by introducing oxygen to the OCM catalytic sites through a membrane, parasitic gas phase reactions of O 2 (g), responsible for lowering product selectivity, can be avoided. The design and fabrication of membrane/catalyst systems has, however, been hampered by low volumetric chemical conversion rates, high capital cost, and difficulties in codesigning membrane and catalyst properties to optimize the performance. We solve these issues by developing a dual-layer additive manufacturing process, based on phase inversion, to design, fabricate and optimize a hollow fiber membrane/catalyst system for OCM. We demonstrate the approach though a case study using BaCe 0.8 Gd 0.2 O 3-δ (BCG) as the basis of both the catalyst and separation layers. We show that by using the manufacturing approach we can codesign the membrane thickness and catalyst surface area so that the flux of oxygen transport through the membrane and methane activation rates in the catalyst layer match each other. Here, we demonstrate that this “rate matching” is critical for maximizing the performance, with the membrane/catalyst system significantly overperforming conventional reactor designs under identical conditions.

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BibTeXRIS

Wortman, James, Igenegbai, Valentina Omoze, Almallahi, Rawan, Motagamwala, Ali Hussain, Linic, Suljo. 2023-10-12. Optimizing hierarchical membrane/catalyst systems for oxidative coupling of methane using additive manufacturing. https://doi.org/10.1038/s41563-023-01687-x

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36 MATERIALS SCIENCE↗