Zhu Pengxi, Bian Wenjuan, Liu Bin, Deng Hao, Wang Lucun, Huang Xiaozhou, Spence Stephanie L, Lin Feng, Duan Chuancheng, Ding Dong, Dong Pei, Ding Hanping
Energy and Environment Science & Technology, Idaho National Laboratory, Idaho Falls, ID, 83415, USA.
Department of Mechanical Engineering, George Mason University, Fairfax, VA, 22030, USA.
Nat Commun. 2024 Apr 16;15(1):3280. doi: 10.1038/s41467-024-47595-9.
Non-oxidative methane dehydro-aromatization reaction can co-produce hydrogen and benzene effectively on a molybdenum-zeolite based thermochemical catalyst, which is a very promising approach for natural-gas upgrading. However, the low methane conversion and aromatics selectivity and weak durability restrain the realistic application for industry. Here, a mechanism for enhancing catalysis activity on methane activation and carbon-carbon bond coupling has been found to promote conversion and selectivity simultaneously by adding platinum-bismuth alloy cluster to form a trimetallic catalyst on zeolite (Pt-Bi/Mo/ZSM-5). This bimetallic alloy cluster has synergistic interaction with molybdenum: the formed CH from MoC on the external surface of zeolite can efficiently move on for C-C coupling on the surface of Pt-Bi particle to produce C compounds, which are the key intermediates of oligomerization. This pathway is parallel with the catalysis on Mo inside the cage. This catalyst demonstrated 18.7% methane conversion and 69.4% benzene selectivity at 710 °C. With 95% methane/5% nitrogen feedstock, it exhibited robust stability with slow deactivation rate of 9.3% after 2 h and instant recovery of 98.6% activity after regeneration in hydrogen. The enhanced catalytic activity is strongly associated with synergistic interaction with Mo and ligand effects of alloys by extensive mechanism studies and DFT calculation.
非氧化甲烷脱氢芳构化反应可以在基于钼-沸石的热化学催化剂上有效地联产氢气和苯,这是天然气提质的一种非常有前景的方法。然而,低甲烷转化率、芳烃选择性以及较弱的耐久性限制了其在工业上的实际应用。在此,通过添加铂-铋合金簇在沸石上形成三金属催化剂(Pt-Bi/Mo/ZSM-5),发现了一种增强甲烷活化和碳-碳键偶联催化活性的机制,可同时提高转化率和选择性。这种双金属合金簇与钼具有协同相互作用:在沸石外表面由MoC形成的CH可以有效地迁移至Pt-Bi颗粒表面进行C-C偶联以生成C化合物,这些化合物是齐聚反应的关键中间体。该途径与笼内钼的催化作用并行。该催化剂在710℃时表现出18.7%的甲烷转化率和69.4%的苯选择性。以95%甲烷/5%氮气为原料时,它表现出稳健的稳定性,2小时后失活速率缓慢,为9.3%,在氢气中再生后活性可即时恢复98.6%。通过广泛的机理研究和密度泛函理论计算,增强的催化活性与与钼的协同相互作用以及合金的配体效应密切相关。