Skip to main navigation Skip to search Skip to main content

In situ atomic-resolution imaging of water vapor–driven multistep oxidation dynamics in strontium cobaltite

  • Zhenzhong Yang*
  • , Ke Qu
  • , Yifeng Zhao
  • , Le Wang
  • , Libor Kovarik
  • , Peter V. Sushko
  • , Yingjie Lyu
  • , Jianbing Zhang
  • , Pu Yu
  • , Chungang Duan
  • , Yingge Du*
  • *Corresponding author for this work
  • Pacific Northwest National Laboratory
  • East China Normal University
  • Tsinghua University
  • Shanxi University

Research output: Contribution to journalArticlepeer-review

Abstract

Understanding how water vapor interacts with transition metal oxides (TMOs) is critical for tailoring material properties to improve performance and enable new technologies. Despite extensive research efforts, atomic-scale mechanisms underpinning dynamic reactions and reaction-induced phase transitions remain elusive. Here, we use in situ environmental transmission electron microscopy to investigate how water vapor oxidizes vacancy-ordered SrCoO2.5 at moderately elevated temperatures, demonstrating that water molecules can initiate oxidation more effectively than oxygen under comparable conditions. We discover a distinct “staging” behavior during the oxidation process: A fully ordered intermediate phase, SrCoO2.75, forms before transitioning into a near-perovskite SrCoO3−δ. In addition, antiphase boundaries, originating at step terraces of SrTiO3, alleviate strain by creating reversible nanoscale “gaps” during lattice contraction under oxidation, providing a pathway for preserving structural integrity throughout redox cycling. This work provides atomic-level guidance for engineering TMOs by leveraging water vapor to control their redox behavior and tailor functional properties.

Original languageEnglish
Article numbereadx8890
Pages (from-to)1-8
Number of pages8
JournalScience Advances
Volume11
Issue number34
DOIs
StatePublished - 22 Aug 2025

Fingerprint

Dive into the research topics of 'In situ atomic-resolution imaging of water vapor–driven multistep oxidation dynamics in strontium cobaltite'. Together they form a unique fingerprint.

Cite this