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Pore-Structure Engineering of Hierarchical Ni/Y Catalysts for the Enhanced Selective Hydrocracking of Naphthalene to BTX

作者:Xiaoyang Kong, Yuyang Li, Zhentao Liu, Yutong Zou, Dongze Li, Jixing Liu, Wei Wang, Chunya Wang, Chunming Xu, Xilong Wang · 发表于:ACS Sustainable Chemistry & Engineering · 年份:2025 · DOI:10.1021/acssuschemeng.5c03533 · 被引用次数:9 · 研究领域:Catalysis and Hydrodesulfurization Studies、Catalytic Processes in Materials Science、Catalysts for Methane Reforming

Selective hydrocracking of naphthalene over bifunctional catalysts is promising for the upgrading of polycyclic aromatic hydrocarbons into high-value BTX. The key to achieving high hydrocracking activity and BTX yield is to design bifunctional catalysts with moderate hydrogenation and ring-opening cracking capability, which relies on appropriate acid and textural properties as well as suitable metal–support interactions. Herein, we designed hierarchical Ni/PTY (post-treatment Y) catalysts with open hierarchical pore structure, moderate acidity and highly dispersed small-sized Ni species via the pore-structure engineering of Y zeolites and the ethylenediamine-assisted impregnation strategy. The open hierarchical pore structure and tunable acidity of Ni/PTY catalysts optimized the balance between metal–acid sites, which was beneficial to the selectivity of the hydrogenation route, isomerization route and cracking route. As a result, the optimized Ni/PTY catalysts showed a superior naphthalene conversion of 88.7% and BTX yield of 62.5% with high turnover frequency values (TOF, 14.5 h –1 ) and reaction rate constants ( k HCK, 2.8 h –1 ). Furthermore, the possible reaction pathway and mechanism was proposed and studied for such Ni/PTY catalyst system.