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Synthetic Placement of Active Sites in MFI Zeolites for Selective Toluene Methylation to para-Xylene

化学 过渡状态 催化作用 密度泛函理论 选择性 活动站点 甲苯 沸石 计算化学 甲基环己烷 组合化学 有机化学
作者
Sopuruchukwu Ezenwa,Hansel Montalvo-Castro,Alexander J. Hoffman,Huston Locht,Jordan Attebery,Deng‐Yang Jan,Michael B. Schmithorst,Bradley F. Chmelka,David Hibbitts,Rajamani Gounder
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:146 (15): 10666-10678 被引量:27
标识
DOI:10.1021/jacs.4c00373
摘要

Brønsted acidic zeolites are ubiquitous catalysts in fuel and chemical production. Broadening the catalytic diversity of a given zeolite requires strategies to manipulate the acid site placement at framework positions within distinct microporous locations. Here, we combine experiment and theory to elucidate how intermolecular interactions between organic structure-directing agents (OSDAs) and framework Al centers influence the placement of H+ sites in distinct void environments of MFI zeolites and demonstrate the catalytic consequences of active site location on kinetically controlled (403 K) toluene methylation to xylene regioisomers. Kinetic measurements, interpreted using mechanism-derived rate expressions and transition state theory, alongside density functional theory (DFT) calculations show that larger intersection environments similarly stabilize all three xylene isomer transition states without altering well-established aromatic substitution patterns (ortho/para/meta ∼ 60%:30%:10%), while smaller channel environments preferentially destabilize transition states that form bulkier ortho- and meta-isomers, thereby resulting in high intrinsic para-xylene selectivity (∼80%). DFT calculations reveal that the flexibility of nonconventional OSDAs (e.g., 1,4-diazabicyclo[2.2.2]octane) to reorient within MFI intersections and their ability to hydrogen-bond to form protonated complexes favor the placement of Al in smaller channel environments compared to conventional quaternary OSDAs (e.g., tetra-n-propylammonium). These molecular-level insights establish a mechanistic link between OSDA structure, active site placement, and transition state stability in MFI zeolites and provide active site design strategies that are orthogonal to crystallite design approaches harnessing complex reaction-diffusion phenomena to enhance regioisomer selectivity in the industrial production of valuable polymer precursors.

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