双功能
聚烯烃
化学
催化作用
异构化
甲基环戊烷
四氢噻吩
双功能催化剂
聚合物
杂原子
碳化物
化学工程
选择性
贵金属
有机化学
钨
组合化学
多相催化
无机化学
开裂
己二酸
聚氯乙烯
铑
石油化工
催化裂化
噻吩
氢解
聚合
氯
纳米技术
作者
Uchendu Nwachukwu,Matthew J. Moegling,Sinhara M. H. D. Perera,Al‐Sakib Khan Pathan,Jun Chen,Fereshteh Rezvani,Aswathi Rajeevan Vannante Valappil,Cong Zhou,Loay K. A. Rahman,Jian Liu,Sung Min Kim,James M. Eagan,Siddharth Deshpande,Marc D. Porosoff,Linxiao Chen
摘要
Hydrocracking is a promising route for the chemical recycling of polyolefins (PO), converting them into short hydrocarbons over bifunctional catalysts with metal sites for hydrogenation and dehydrogenation, and Brønsted acid sites (BAS) for isomerization and C-C bond cleavage. However, PO feedstocks containing polyvinyl chloride (PVC) can release chlorine (Cl) under reaction conditions, deactivating conventional noble metal/zeolite catalysts. Moreover, the lack of site intimacy and the presence of micropores within conventional catalysts create challenges around the transport of high-molecular-weight, sterically encumbered polymer intermediates. Here, we report tungsten carbides (WxC) as a novel type of bifunctional catalysts that address these challenges. W/W2C phases on WxC offer "metal" sites, and -OH on WOx species introduces BAS in close proximity. The "metal":BAS ratio can be tuned through carburization temperature, leading to a volcano-shaped activity trend reflecting the requirement for metal-BAS balance. Kinetic data demonstrate that each PO chain undergoes sequential cleavage, while trends in cracking ideality and selectivity follow those in short-alkane hydrocracking. On the per-BAS basis, WxC is more efficient than conventional bifunctional catalysts by more than an order of magnitude, due to enhanced polymer transport. They maintain or show increased activity with 10 wt % PVC in the substrate. This work establishes transition-metal carbides as earth-abundant bifunctional catalysts with unique site proximity and heteroatom compatibility. These features, along with the broad structure space for rational tuning, make them promising options to tackle specific challenges that polymer feedstocks present in hydrocracking.
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