Stabilizing Few‐Atom Platinum Clusters by Zinc Single‐Atom‐Glue for Efficient Anti‐Markovnikov Alkene Hydrosilylation

Author:

Li Ruilong12,Yu Ge2,Lin Ze2,Lin Xingen2,Du Junyi3,Gao Xiaoping4,Su Chenliang1,Wu Yuen2ORCID

Affiliation:

1. International Collaborative Laboratory of 2D Materials for Optoelectronics Science and Technology of Ministry of Education, Institute of Microscale Optoelectronics Shenzhen University Shenzhen 518060 China

2. School of Chemistry and Materials Science University of Science and Technology of China Hefei 230026 China

3. Key Laboratory of Multifunctional Nanomaterials and Smart Systems, Division of Advanced Materials, Suzhou Institute of Nano-Tech and Nano-Bionics Chinese Academy of Sciences Suzhou 215123 China

4. Hefei National Research Center for Physical Sciences at the Microscale University of Science and Technology of China Hefei 230026 China

Abstract

AbstractFew‐atom metal clusters (FAMCs) exhibit superior performance in catalyzing complex molecular transformations due to their special spatial environments and electronic states, compared to single‐atom catalysts (SACs). However, achieving the efficient and accurate synthesis of FAMCs while avoiding the formation of other species, such as nanoparticles and SACs, still remains challenges. Herein, we report a two‐step strategy for synthesis of few‐atom platinum (Pt) clusters by predeposition of zinc single‐atom‐glue (Zn1) on MgO nanosheets (Ptn−Zn1/MgO), where FAMCs can be obtained over a wide range of Pt contents (0.09 to 1.45 wt %). Zn atoms can act as Lewis acidic sites to allow electron transfer between Zn and Pt through bridging O atoms, which play a crucial role in the formation and stabilization of few‐atom Pt clusters. Ptn−Zn1/MgO exhibited a high selectivity of 93 % for anti‐Markovnikov alkene hydrosilylation. Moreover, an excellent activity with a turnover frequency of up to 1.6×104 h−1 can be achieved, exceeding most of the reported Pt SACs. Further theoretical studies revealed that the Pt atoms in Ptn−Zn1/MgO possess moderate steric hindrance, which enables high selectivity and activity for hydrosilylation. This work presents some guidelines for utilizing atomic‐scale species to increase the synthesis efficiency and precision of FAMCs.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Anhui Province

Science Fund for Distinguished Young Scholars of Anhui Province

Anhui Provincial Key Research and Development Plan

Collaborative Innovation Center for Water Treatment Technology and Materials

Shenzhen Science and Technology Innovation Program

Publisher

Wiley

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