Copper Site Motion Promotes Catalytic NO x Reduction under Zeolite Confinement

作者:Chen, Dongdong; Khetan, Abhishek*; Lei, Huarong; Rizzotto, Valentina; Yang, Jia-Yue; Jiang, Jiuxing; Sun, Qiming; Peng, Baoxiang; Chen, Peirong*; Palkovits, Regina; Ye, Daiqi; Simon, Ulrich
来源:Environmental Science and Technology, 2023, 57(42): 16121-16130.
DOI:10.1021/acs.est.3c03422

摘要

Ammonia-mediated selective catalytic reduction (NH3-SCR) is currently the key approach to abate nitrogen oxides (NOx) emitted from heavy-duty lean-burn vehicles. The state-of-art NH3-SCR catalysts, namely, copper ion-exchanged chabazite (Cu-CHA) zeolites, perform rather poorly at low temperatures (below 200 degrees C) and are thus incapable of eliminating effectively NOx emissions under cold-start conditions. Here, we demonstrate a significant promotion of low-temperature NOx reduction by reinforcing the dynamic motion of zeolite-confined Cu sites during NH3-SCR. Combining complex impedance-based in situ spectroscopy (IS) and extended density-functional tight-binding molecular dynamics simulation, we revealed an environment- and temperature-dependent nature of the dynamic Cu motion within the zeolite lattice. Further coupling in situ IS with infrared spectroscopy allows us to unravel the critical role of monovalent Cu in the overall Cu mobility at a molecular level. Based on these mechanistic understandings, we elicit a boost of NOx reduction below 200 degrees C by reinforcing the dynamic Cu motion in various Cu-zeolites (Cu-CHA, Cu-ZSM-5, Cu-Beta, etc.) via facile postsynthesis treatments, either in a reductive mixture at low temperatures (below 250 degrees C) or in a nonoxidative atmosphere at high temperatures (above 450 degrees C).

  • 单位
    1; 苏州大学; 山东大学; 中山大学