除氧
催化作用
沸石
化学
烯烃纤维
硬脂酸
热解
脱碳
产品分销
化学工程
产量(工程)
铝
有机化学
选择性
无机化学
脂肪酸
矿物酸
材料科学
芳构化
多相催化
生物量(生态学)
作者
Yiling Wu,Youting Wang,Jiahao Wu,Bin Chen,Yuan Li,Kok Bing Tan,Yikun Zhou,Jian Tian,Xiaoping Rao,Guowu Zhan
标识
DOI:10.1021/acssuschemeng.6c00821
摘要
The spatial distribution of framework aluminum (Al F ) in ZSM-5 zeolites critically controls catalytic pathways for converting fatty acids to value-added short-chain olefins (C 4 = -C 8 = ). Here, we synthesize hierarchical-porous BioZ5-PX catalysts using phytic acid (PA)-modified tea seed husk (TSH) biomass templates to strategically position Al F . Interestingly, PA optimization precisely directs aluminum toward channel intersections, enhancing Brønsted acidity and Al-pair proximity. This spatial engineering achieves near-complete deoxygenation (100% conversion) with exceptional 97.4% total olefin selectivity and 92.6% C 4 = -C 8 = selectivity, outperforming unmodified analogs by >32%. Mechanistic studies reveal that aluminum enrichment at intersections facilitates a cascade reaction: stearic acid first undergoes decarbonylation to a C 17 H 35 OH, followed by dehydration and selective C–C cleavage to C 4 = -C 8 = products. Conversely, aluminum confined to straight/sinusoidal channels as isolated sites restricts intermediate diffusion (due to large steric hindrance) and cracking efficiency. This work establishes Al F spatial control as a key design principle for designing high-performance zeolite catalysts for sustainable, high-yield olefin production from biomass.
科研通智能强力驱动
Strongly Powered by AbleSci AI