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Differentiating supported platinum single atoms, clusters and nanoparticles by styrene hydrogenation

  • Yuan Zhang
  • , Dat T. Tran
  • , David Baker
  • , Sheng Zhang
  • , Tong Wang
  • , Sooyeon Hwang
  • , Emily Schulman
  • , Jiayi Fu
  • , Weiqing Zheng
  • , Dionisios G. Vlachos
  • , Ji Qi
  • , Philip Christopher
  • , Yang Liu
  • , Anatoly Frenkel
  • , Dongxia Liu
  • University of Maryland, College Park
  • U.S. Army Research Laboratory
  • New York University
  • Brookhaven National Laboratory
  • University of Delaware
  • University of California at Santa Barbara
  • Stony Brook University

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

Supported metal catalysts often consist of metal sites ranging from nanoparticles to subnanometer clusters and single atoms. It remains a necessity to differentiate these sites to guide design of optimal catalysts. Here we report a simple method to assess the distribution of metal active sites in catalyst samples. The method takes the advantage of the structure sensitivity of styrene hydrogenation over titania supported platinum (Pt) catalysts with Pt aggregates varied from single atom to ∼1.40 nm nanoparticles. The physicochemical properties were characterized by STEM, XPS, XANES, H2-TPR and CO-chemisorption measurements. The reactivity of Pt sites was quantified by styrene hydrogenation at ambient conditions. The nanometer-sized Pt clusters have significantly higher activity than Pt nanoparticles, sub-nanometer clusters or isolated single atoms. The relationship between activity and structural/electronic properties of Pt sites influenced by particle sizes was discussed. Similar relationship was found in the carbon supported Pt catalysts.

Original languageEnglish
Article number112709
JournalMolecular Catalysis
Volume531
DOIs
StatePublished - Oct 2022

Keywords

  • Metal cluster
  • Nanoparticle
  • Single atom catalyst
  • Structure sensitivity
  • Styrene hydrogenation

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