脱氢
丙烷
催化作用
化学
化学工程
材料科学
无机化学
有机化学
工程类
作者
Limin Zhang,Huahua Fan,Miao Zhang,Haoqing Zhang,Hao Wang,Bangjian Liu,Jiaxing Zhang,Xiaowa Nie,Guanghui Zhang,Chunshan Song,Xinwen Guo
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-06-06
卷期号:15 (12): 10639-10650
被引量:16
标识
DOI:10.1021/acscatal.5c01412
摘要
Cobalt-based catalysts have recently emerged as a promising frontier in propane dehydrogenation (PDH) research. Despite their potential, achieving selective suppression of nonselective metallic cobalt (Co0) species remains a critical challenge. In this work, we report a hollow zeolite architecture (Co@S-1-Hol) that effectively addresses this dilemma through spatial confinement engineering. Through depth-profiling XPS analysis complemented by H2-TPR and UV–vis spectroscopy characterization, we demonstrate a unique cobalt valence distribution where metallic Co0 species are preferentially encapsulated within hollow cavities, while Co2+ ions remain atomically dispersed in the zeolite shell matrix. DFT calculations coupled with kinetic studies reveal that the cavity-confined Co0 clusters serve as the predominant active centers for C–H bond activation. Notably, STEM-EDS mapping and TGA uncover a self-regulating mechanism: the hierarchical hollow structure facilitates rapid and selective coking on nonselective surface sites during initial reaction phases, effectively passivating undesirable side reactions while preserving intrinsic catalytic activity. This spatial engineering strategy endows the Co@S-1-Hol catalyst with superior PDH performance compared to the conventional impregnated Co/S-1 catalyst, exhibiting an enhanced C3H6 formation rate (21.6 mmol gcat–1 h–1, equivalent to 1330 mmol gCo–1 h–1) coupled with a significantly reduced deactivation rate. Under optimized conditions at 550 °C, the catalyst achieves 35% propane conversion with 95% propylene selectivity, representing state-of-the-art performance among reported cobalt-based PDH catalysts. This work not only provides fundamental insights into cobalt active site engineering but also establishes a paradigm for designing spatially modulated zeolite catalysts in alkane dehydrogenation applications.
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