Enhancing liquified petroleum gas selectivity through hierarchical porosity in MWW-type MCM-49 zeolite for polyethylene hydrocracking

IF 4.2 3区 化学 Q2 CHEMISTRY, PHYSICAL
Ruoyan Bai, Juhong Nie, Roudan Lian, Jian Zhang and Maolin Zhang
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Abstract

Zeolite-based catalysts show their potential in selective hydrocracking of polyethylene (PE) into liquid alkanes under mild conditions. However, achieving selective C–C bond scission toward value-added propane or liquified petroleum gas (LPG) over zeolite-based systems remains underexplored. This work highlights the critical role of hierarchical porosity in enhancing hydrocracking activity for LPG formation via zeolite-supported Pt catalysts. By leveraging Pt's hydrogen activation capability, 0.5 wt% Pt-loaded MCM-49 (MCM-49/Pt) enables full PE conversion with 92.7% LPG selectivity at 300 °C and 3 MPa H2. Moreover, it maintains >85% LPG yield after five consecutive cycles. This performance discrepancy arises from MCM-49's hierarchical porosity, where mesopores facilitate rapid diffusion of macromolecules to acidic sites, while micropores impose shape-selective constraints favoring gaseous products through spatial confinement, as evidenced by contrasting the catalytic property of MWW-type zeolites MCM-22 (microporous) and MCM-49 (micro-mesoporous). This dual-functional catalyst design enables efficient plastic-to-fuel conversion, offering a sustainable pathway for hydrocarbon resource recovery.

Abstract Image

mww型MCM-49分子筛分级孔隙度对聚乙烯加氢裂化液化石油气选择性的影响
沸石基催化剂在温和条件下选择性加氢裂化聚乙烯(PE)制备液态烷烃方面显示出其潜力。然而,在沸石基系统上实现增值丙烷或液化石油气(LPG)的选择性C-C键裂解仍未得到充分探索。这项工作强调了分级孔隙度在通过沸石负载的Pt催化剂提高液化石油气加氢裂化活性方面的关键作用。利用Pt的氢活化能力,0.5 wt% Pt负载的MCM-49 (MCM-49/Pt)在300°C和3 MPa H2条件下可实现PE的完全转化,LPG选择性为92.7%。此外,在连续五个循环后,它保持了85%的液化石油气收率。这种性能差异源于MCM-49的分层孔隙度,其中介孔促进大分子快速扩散到酸性位点,而微孔通过空间限制施加有利于气态产物的形状选择约束,这一点可以通过对比MCM-22(微孔)和MCM-49(微介孔)的催化性能得到证明。这种双功能催化剂设计实现了高效的塑料到燃料的转化,为碳氢化合物资源的回收提供了可持续的途径。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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