催化作用
腈
化学
基质(水族馆)
多相催化
化学还原
催化加氢
纳米颗粒
组合化学
金属
有机化学
材料科学
化学工程
合金
还原剂
精细化工
过渡金属
选择性催化还原
母材
化学合成
纳米技术
选择性
基础(拓扑)
均相催化
金属有机骨架
作者
Taiki Kawakami,Yuxuan Feng,Kentaro Okano,Sho Yamaguchi
标识
DOI:10.1021/acscatal.6c03613
摘要
Alloying with other metals is an effective strategy for enhancing the catalytic performance of intrinsically low-activity, non-precious metals. Liquid-phase reduction is a powerful method for synthesizing well-defined metal alloy nanoparticles with narrow size distributions and controlled structures; however, combining non-precious metals with early-transition metals remains largely unexplored due to their significantly different chemical properties. Herein, we report the development of a well-defined Ni–W nanoalloy (nano-NiW) by using a liquid-phase reduction method and its application as a heterogeneous catalyst for the hydrogenation of nitriles to secondary amines. The nano-NiW catalyst exhibited higher activity compared with monometallic Ni and conventionally impregnated Ni–W catalysts, enabling the selective nitrile hydrogenation to secondary amines even at 0.1 MPa H 2 . The catalyst also showed a broad substrate scope and could be recycled without loss of activity. Comprehensive structural and kinetic analyses revealed that incorporation of W into nano-NiW facilitates Schiff base reduction, a key step in the catalytic cycle. Overall, this study substantially advances the performance of Ni-based catalysts and offers a promising strategy for more efficient and economical organic synthesis.
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