Removing low-concentration methane via thermo-catalytic oxidation on CuOx/zeolite

Yuyin Wang, Yun Wang, Zihan Liu, Ying Li, Lin Yao, Shibo Shao, Xianfeng Fan, Tingzhen Ming, Xiaohua Lu, Liwen Mu, Wei Li

Research output: Contribution to journalArticlepeer-review

Abstract

Methane (CH 4) is the second most potent greenhouse gas that exists largely in low concentrations. This fact, coupled with its inert nature, brings both urgency and challenge for any mitigations (including thermo-catalytic oxidation). In this study, we address this challenge by synthesizing highly dispersed CuO x species (∼6 wt%) loaded on mordenite zeolite (MOR), and enhancing the catalytic performance for the thermal oxidation of low-concentration CH 4. The optimized sample, Cu-MOR-11, demonstrates exceptional catalytic properties, including high activity with 100 % CH 4 total oxidation to CO 2 at 400 °C, low reaction temperature with a T 10 at 230 °C and T 90 at 350 °C, as well as excellent long-term stability and reusability over a 100-hour reaction period. These attributes make it a promising candidate for large scale CH 4 oxidation applications. To elucidate the mechanisms behind the enhanced catalytic performance of Cu-MOR-11, we conclude, 1) the generation of more Brønsted acid sites which facilitated the absorption and dissociation of CH 4; 2) the presence of Al 3+ as acid sites in the MOR supports played a crucial role in achieving high CuO x species dispersion, acting as anchoring sites to effectively stabilize and disperse CuO x species, which provides more active sites; 3) variation in preparation environments (e.g., pH) led to different oxidation states of the catalysts, with alkaline conditions facilitating the deoxidation of CuO x species, resulting in more Cu +&Cu 0 compared to CuO; 4) the presence of Brønsted acid sites which mitigated coking at low temperatures and prevented the loss of structural stability at high temperatures.

Original languageEnglish
Article number161691
Pages (from-to)161691
JournalApplied Surface Science
Volume682
Early online date3 Nov 2024
DOIs
Publication statusPublished - 15 Feb 2025

Keywords / Materials (for Non-textual outputs)

  • Greenhouse gas
  • Methane
  • Oxidation
  • Thermocatalysis

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