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"Suspended" Single Rhenium Atoms on Nickel Oxide for Efficient Electrochemical Oxidation of Glucose

  • Xunzhu Jiang
  • , Xianhong Wu
  • , Mingyue Lv
  • , Xiaoli Pan
  • , Hua Wang
  • , Chenyang Li
  • , Meixin Chen
  • , Wei Chen
  • , Bo Zhang*
  • , Guangtao Yu*
  • , Zhong-Shuai Wu*
  • , Botao Qiao*
  • , Bin Liu*
  • , Fritz E. Kühn
  • , Tao Zhang
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Well-defined single-atom catalysts (SACs) serve as ideal model systems for directly comparing experimental results with theoretical calculations, offering profound insights into heterogeneous catalytic processes. However, precisely designing and controllably synthesizing SACs remain challenging due to the unpredictable structure evolution of active sites and generation of embedded active sites, which may bring about steric hindrance during chemical reactions. Herein, we present the precious nonpyrolysis synthesis of Re SACs with a well-defined phenanthroline coordination supported by NiO (Re1-phen/NiO). Multiple experimental characterizations together with theoretical calculations unravel the idea that the isolated Re atoms are suspended on the NiO surface, connected by phenanthroline ligands standing perpendicular to the surface. This unique structure provides the Re1-phen/NiO SAC with a strong capability to activate glucose molecules, enabling fully exposed Re=O double bonds in an open-ended reaction environment to simultaneously react with hydroxyl and aldehyde groups at both ends of the glucose molecule, rapidly forming glucaric acid. © 2025 American Chemical Society.
Original languageEnglish
Pages (from-to)4886–4895
JournalJournal of the American Chemical Society
Volume147
Issue number6
Online published14 Jan 2025
DOIs
Publication statusPublished - 12 Feb 2025

Funding

This work was financially supported by the National Key Research and Development Program of China (2021YFA1500503), National Natural Science Foundation of China for Single-Atom Catalysis (22388102), National Natural Science Foundation of China (grants 22078317, 22209174, 22125903, and 22473026), Natural Science Foundation of Fujian Province (2022J01167 and 2024J01289), Research Foundation of Academy of Carbon Neutrality of Fujian Normal University (TZH2022-05), Minjiang Scholar and Startup Fund for High-Level Talent at Fujian Normal University, Fujian-Taiwan Science and Technology Cooperation Base of Biomedical Materials and Tissue Engineering (2021D039), the City University of Hong Kong startup fund (9020003), ITF–RTH - Global STEM Professorship (9446006), and JC STEM lab of Advanced CO2 Upcycling (9228005), Liaoning Binhai Laboratory (LBLD-2024-04) and funded by the Technical University of Munich-Institute for Advanced Study, Germany.

RGC Funding Information

  • RGC-funded

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