化学
丙炔
炔烃
脱氢
乙炔
选择性
催化作用
金属间化合物
密度泛函理论
组合化学
开裂
乙烯
烷烃
化学工程
纳米技术
有机化学
计算化学
材料科学
合金
工程类
作者
Xiaohu Ge,Jun Yin,Zhouhong Ren,Kelin Yan,Yundao Jing,Yueqiang Cao,Nina Fei,Xi Liu,Xiaonan Wang,Xinggui Zhou,Liwei Chen,Weikang Yuan,Xuezhi Duan
摘要
Alkyne hydrogenation on palladium-based catalysts modified with silver is currently used in industry to eliminate trace amounts of alkynes in alkenes produced from steam cracking and alkane dehydrogenation processes. Intensive efforts have been devoted to designing an alternative catalyst for improvement, especially in terms of selectivity and catalyst cost, which is still far away from that as expected. Here, we describe an atomic design of a high-performance Ni-based intermetallic catalyst aided by active machine learning combined with density functional theory calculations. The engineered NiIn catalyst exhibits >97% selectivity to ethylene and propylene at the full conversion of acetylene and propyne at mild temperature, outperforming the reported Ni-based catalysts and even noble Pd-based ones. Detailed mechanistic studies using theoretical calculations and advanced characterizations elucidate that the atomic-level defined coordination environment of Ni sites and well-designed hybridization of Ni 3d with In 5p orbital determine the semihydrogenation pathway.
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