详细信息
Hydrogen spillover-induced low-temperature activation of NiCu/Al2O3 catalyst for efficient polyalphaolefin hydrogenation ( SCI-EXPANDED收录)
文献类型:期刊文献
英文题名:Hydrogen spillover-induced low-temperature activation of NiCu/Al2O3 catalyst for efficient polyalphaolefin hydrogenation
作者:Wang, Jie[1];Chen, Yilong[1];Zhang, Chengxi[2];Meng, Xuan[1];Liu, Naiwang[1];Shi, Li[1]
机构:[1]East China Univ Sci & Technol, Int Joint Res Ctr Green Energy Chem Engn, Shanghai 200237, Peoples R China;[2]Sinopec Res Inst Petr Proc Co Ltd, Beijing, Peoples R China
年份:2026
卷号:589
外文期刊名:MOLECULAR CATALYSIS
收录:;WOS:【SCI-EXPANDED(收录号:WOS:001629183600001)】;
基金:The authors acknowledge the support of the State KeyLaboratory of Petroleum Molecular & Process Engineering through its Open Research Program.
语种:英文
外文关键词:Polyalphaolefins; Hydrogenation
摘要:To our knowledge, this is the first time the NixCuy/Al2O3 catalyst has been prepared by the deposition-precipitation method and applied to the hydrogenation synthesis of polyalphaolefins (PAO). The effects of the Ni/Cu molar ratio, catalyst preparation conditions, and reduction temperature on the hydrogenation performance of these catalysts were systematically investigated. The 200 degrees C low-temperature reduction strategy effectively inhibited the sintering of active sites, thereby significantly improving metal dispersion and reducibility. The characterization results show that the introduction of Cu promotes the dispersion of Ni and the activation ability of H2. Combined with the synergistic effect of the mesoporous Al2O3 carrier, the structure of the catalyst is optimized. Among these catalysts, Ni3Cu1/Al2O3 exhibits the optimal hydrogenation activity and stability under low-temperature reduction conditions. This superiority is attributed to the hydrogen spillover effect of Cu, which promotes the migration of active hydrogen to Ni sites and thus reduces the reaction energy barrier. This catalyst still maintains high activity and stability under high space velocity conditions, demonstrating a promising industrial application prospect.
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