Fantastic Magnetic Regulation via Vapor-Modulation in Layered Perovskite Oxides

Layered perovskite oxides offer exceptional structural tunability, providing an ideal platform for designing materials with finely controlled electronic and magnetic properties. Although water incorporation, hydration reactions, and proton insertion have been investigated in layered oxides, directly correlating lattice-confined water species with real-space structural reconstruction and reversible magnetic regulation remains unexplored. Here, by introducing a simple, highly controllable vapor-modulation strategy, we directly probe and trigger profound structural and magnetic transitions in Ruddlesden-Popper layered perovskite oxides. Such brief vapor-treatment of La0.25Sr2.75Fe0.8Co1.2O7-δ at 100 °C induces a dramatic 1257% enhancement in magnetic sensitivity and enables reversible weak-field magnetization switching. Through atomic-resolution imaging and theoretical simulations, we reveal that water molecules selectively intercalate into the rock-salt layers, causing c-axis expansion, lattice slip, and fundamentally overcoming the competing antiferromagnetic interactions to favor ferromagnetic coupling. This reversible water intercalation process, coupled with water-induced lattice sliding, provides a facile, low-cost, and reversible method for active magnetic control. More importantly, by directly visualizing the lattice-confined hydration process, our findings establish a real-space picture of water intercalation and storage in RP oxide lattices. This work opens avenues for designing advanced spintronic devices and high-performance humidity sensors and provides microscopic insights into water accommodation in layered oxide frameworks.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-04
DOI
https://doi.org/10.1021/acsami.6c10543
Primary Topic
Electronic and Structural Properties of Oxides
Type
article
Field-Weighted Citation Impact
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article

Fantastic Magnetic Regulation via Vapor-Modulation in Layered Perovskite Oxides

Bin Xiang, Hao Cheng, Yalin Lu, Bing Xiong et al.
ACS Applied Materials & Interfaces
Electronic and Structural Properties of Oxides
article

Fantastic Magnetic Regulation via Vapor-Modulation in Layered Perovskite Oxides

Bin Xiang, Hao Cheng, Yalin Lu, Bing Xiong, Yangkai Wang, Zhengping Fu, Qingyou Lu, Zhangzhang Cui, Qiuping Huang, Qiang Deng, Nai Shi, Jun Huang, Jianlin Wang, Jiwen Yang, Ranran Peng, Bingbing Qiu, Yue Gao
article en

Abstract

Layered perovskite oxides offer exceptional structural tunability, providing an ideal platform for designing materials with finely controlled electronic and magnetic properties. Although water incorporation, hydration reactions, and proton insertion have been investigated in layered oxides, directly correlating lattice-confined water species with real-space structural reconstruction and reversible magnetic regulation remains unexplored. Here, by introducing a simple, highly controllable vapor-modulation strategy, we directly probe and trigger profound structural and magnetic transitions in Ruddlesden-Popper layered perovskite oxides. Such brief vapor-treatment of La0.25Sr2.75Fe0.8Co1.2O7-δ at 100 °C induces a dramatic 1257% enhancement in magnetic sensitivity and enables reversible weak-field magnetization switching. Through atomic-resolution imaging and theoretical simulations, we reveal that water molecules selectively intercalate into the rock-salt layers, causing c-axis expansion, lattice slip, and fundamentally overcoming the competing antiferromagnetic interactions to favor ferromagnetic coupling. This reversible water intercalation process, coupled with water-induced lattice sliding, provides a facile, low-cost, and reversible method for active magnetic control. More importantly, by directly visualizing the lattice-confined hydration process, our findings establish a real-space picture of water intercalation and storage in RP oxide lattices. This work opens avenues for designing advanced spintronic devices and high-performance humidity sensors and provides microscopic insights into water accommodation in layered oxide frameworks.

ACS Applied Materials & Interfaces
Kyushu Kyoritsu University (JP), University of Science and Technology of China (CN), Kyushu University (JP), Chinese Academy of Engineering (CN), University of Chinese Academy of Sciences (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 23%
Electronic and Structural Properties of Oxides
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