2023 AIChE Annual Meeting
(521bn) Boosting Low-Temperature Dry Methane Reforming on Supported Intermetallic Ni-Zn Nanocatalysts
Authors
In this work, the electronic state and surface environment of a NiÂÂ-Zn intermetallic catalyst for low-temperature CO2 reforming of methane were effectively controlled. Through careful bimetallic combination and composition tuning, intermetallic bulk structures with distinct surface compositions and structures were created, altering the surface's reactivity and selectivity through electronic, ensemble, and steric effects. The results showed that charge separated paired sites (Nið¿--Znð¿+) iNPs encapsulated in SiO2 increased catalytic activity (syngas production) by a factor of 4 and exhibited enhanced stability during a 160-hour time on stream test at 450°C, while limiting coke formation by four orders of magnitude compared to monometallic Ni. This work provides an approach for surface chemistry control through bimetallic compositional tuning and modification via adsorbate/ligand in heterogeneous catalyst design for relevant reaction systems involving C-H, C=O, and C-C activation.