Symmetry-engineered and electrically tunable in-plane anomalous Hall effect in oxide heterostructures

The family of Hall effects has long served as a premier probe of how symmetry, magnetic order, and topology intertwine in solids. Recently, the in-plane anomalous Hall effect (IP-AHE), a transverse Hall response driven by in-plane magnetization, has emerged as a distinct member of this family, offering innovative spintronic functionalities and illuminating intricate interplay between mirror-symmetry breaking and in-plane magnetic order. However, practical routes to deterministically and reversibly control IP-AHE remain limited. Here, we establish a symmetry-engineered IP-AHE platform, CaRuO3/La2/3Ca1/3MnO3/CaRuO3 heterostructure on NdGaO3(110), that turns strict mirror-symmetry breaking constraints into effective tuning knobs. IP-AHE in these epitaxial trilayers unambiguously couples to the CaRuO3-buffer-induced mirror-symmetry breaking and faithfully reproduces the ferromagnetic hysteresis. Ionic liquid gating further enables reversible reconfigurations of the symmetry breaking, thereby achieving electrical modulation and ON/OFF switching of IP-AHE. This highly tunable IP-AHE platform opens pathways for exploring nontrivial magnetic order and developing programmable Hall functionalities in planar geometries.

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Publication Details

Journal
Nature Communications
Published
2026-10-06
DOI
https://doi.org/10.1038/s41467-026-78350-x
Primary Topic
Magnetic properties of thin films
Type
article
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article

Symmetry-engineered and electrically tunable in-plane anomalous Hall effect in oxide heterostructures

Kunjie Dai, Yang Gao, Jingdi Lu, Enda Hua et al.
Nature Communications
Magnetic properties of thin films
article

Symmetry-engineered and electrically tunable in-plane anomalous Hall effect in oxide heterostructures

Kunjie Dai, Yang Gao, Jingdi Lu, Enda Hua, Zhengguo Liang, Shengchun Shen, Dazhi Hou, Zhen Wang, Wenfeng Wu, Liang Si, Wenbin Wu, Huan Ye, Jinfeng Zhang, Nan Liu, Feng Jin, Ao Wang, Yuyue Zhao, Kai Liu, Linda Yang, Lingfei Wang, Jing Tao, Qiming Lv
article en

Abstract

The family of Hall effects has long served as a premier probe of how symmetry, magnetic order, and topology intertwine in solids. Recently, the in-plane anomalous Hall effect (IP-AHE), a transverse Hall response driven by in-plane magnetization, has emerged as a distinct member of this family, offering innovative spintronic functionalities and illuminating intricate interplay between mirror-symmetry breaking and in-plane magnetic order. However, practical routes to deterministically and reversibly control IP-AHE remain limited. Here, we establish a symmetry-engineered IP-AHE platform, CaRuO3/La2/3Ca1/3MnO3/CaRuO3 heterostructure on NdGaO3(110), that turns strict mirror-symmetry breaking constraints into effective tuning knobs. IP-AHE in these epitaxial trilayers unambiguously couples to the CaRuO3-buffer-induced mirror-symmetry breaking and faithfully reproduces the ferromagnetic hysteresis. Ionic liquid gating further enables reversible reconfigurations of the symmetry breaking, thereby achieving electrical modulation and ON/OFF switching of IP-AHE. This highly tunable IP-AHE platform opens pathways for exploring nontrivial magnetic order and developing programmable Hall functionalities in planar geometries.

Nature Communications
Openalex Percentile: Top 94%
Magnetic properties of thin films
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Symmetry-engineered and electrically tunable in-plane anomalous Hall effect in oxide heterostructures — Kunjie Dai, Yang Gao, et al. · Nature Communications (2026) | TGRS Research Map | TGRS