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高传博

教授 博士生导师 硕士生导师

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  • 学历: 博士研究生毕业
  • 学位: 博士

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ACS Catal: Precision synthesis of ultrasmall alloy NPs for catalytic hydrogenolysis, by Zhibin et al

发布时间:2024-03-29
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发布时间:
2024-03-29
文章标题:
ACS Catal: Precision synthesis of ultrasmall alloy NPs for catalytic hydrogenolysis, by Zhibin et al
内容:

Zhibin's paper is accepted for publication in ACS Catalysis (IF 12.9, Q1, TOP). Good job, and congratulations!

 

Title: Precision synthesis of sub-3 nm bimetallic alloy nanoparticles for efficient and selective catalytic hydrogenolysis of 5-hydroxymethylfurfural to 2,5-dimethylfuran

Authors: Zhibin Wen, Shumeng Zhang, Hao Yuan, Zhixue Zhang, Junlin She, Zhun Qiao, Zhaojun Liu, Kai Liu, Zhun Hu, and Chuanbo Gao*

Link to the Publisher: https://pubs.acs.org/doi/10.1021/acscatal.4c00143

 

 

Abstract: Miniaturizing bimetallic alloy nanoparticles to sizes below the 3 nm threshold holds great potential to achieve distinct catalytic properties compared to single atoms and larger nanoparticles. However, conventional synthesis methods, including impregnation and nanocluster chemistry, often yield ultrasmall alloy nanoparticles with widely varied sizes or compositions. Herein, we introduce a thermodynamically driven mechanism for the precision synthesis of ultrasmall bimetallic alloy nanoparticles. Metal precursors are uniformly distributed into nanoscale compartments within a microemulsion at equilibrium. After solidifying these nano-compartments, stoichiometric metal alloying is achieved at elevated temperatures. Consequently, homogeneously alloyed bimetallic nanoparticles are synthesized within the sub-3 nm region with high precision in both size and composition. The precision synthesis enables the exploration of size- and/or composition-dependent catalytic properties. Notably, 1.2 nm-Pt3Co alloy nanoparticles exhibited optimal performance, outperforming other sizes (0.7-3.2 nm) and reported catalysts in the chemoselective hydrogenolysis of 5-hydroxymethylfurfural to 2,5-dimethylfuran, achieving a turnover frequency of 9733 h-1 with ~100% selectivity. This synthesis unlocks a realm of sub-3 nm bimetallic alloy catalysts with precisely designable properties, holding significant promise for various catalytic processes.