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Atomic-Scale Visualization of Surface Segregation and Ordering of Pt in a Dilute Cu(Pt) Alloy under a Hydrogen Atmosphere

  • Zhilu Liang
  • , Dongxiang Wu
  • , Xianhu Sun
  • , Xiaobo Chen
  • , Dmitri N. Zakharov
  • , Judith C. Yang
  • , Guangwen Zhou
  • State University of New York Binghamton University
  • Brookhaven National Laboratory
  • University of Pittsburgh

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Surface segregation is a common phenomenon in alloys exposed to reactive atmospheres, yet the atomic mechanisms underlying surface structure and composition dynamics remain largely unexplored. Using a combination of environmental transmission electron microscopy observations and atomistic modeling, here we report the surface segregation process of Pt atoms in a dilute Pt(Cu) alloy and determine the distribution of Pt atoms at both atomically flat and stepped surfaces of the Pt(Cu) alloy at elevated temperatures and in a hydrogen gas atmosphere. Through directly probing Pt segregation, we find that Pt atoms segregated on the (100) surface exhibit a p(2 × 2) ordering, with ∼25% Pt occupancy. In contrast, on the stepped (410) surface, hydrogen adsorption induces Pt segregation, initially occurring at the step edges, which then expands to the terrace sites upon increased hydrogen coverage, resulting in an ordered distribution of segregated Pt atoms with ∼22% occupancy. These observations offer mechanistic insights into the structure and composition dynamics of the topmost atomic layer of the alloy in response to environmental stimuli and hold practical implications for the design and optimization of catalysts based on Pt group metals.

Original languageEnglish
Pages (from-to)18236-18246
Number of pages11
JournalJournal of Physical Chemistry C
Volume128
Issue number43
DOIs
StatePublished - Oct 31 2024

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