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

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

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

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