异质结
自旋电子学
材料科学
铁电性
反铁磁性
多铁性
光电子学
压电
拓扑绝缘体
凝聚态物理
压电响应力显微镜
极化(电化学)
铁磁性
磁化
调制(音乐)
纳米技术
磁场
超短脉冲
磁电阻
绝缘体(电)
电场
薄膜
纳米线
自旋(空气动力学)
电压
铁磁共振
铁磁性
原子力显微镜
作者
Yuhan Liang,Huiping Han,Hetian Chen,Yujun Zhang,Yi Zhang,Chao Li,Shun Lan,Fangyuan Zhu,Ji Ma,Di Yi,Jing Ma,Liang Wu,Tianxiang Nan,Yuanhua Lin
摘要
The unique features of ultrafast spin dynamics and the absence of macroscopic magnetization in antiferromagnetic (AFM) materials provide a distinct route toward high-speed magnetic storage devices with low energy consumption and high integration density. However, these advantages also introduce challenges in probing and controlling AFM order, thereby restricting their practical application. In this study, we demonstrate an all-electric control and probing of AFM order in heavy metal/AFM insulator heterostructures on a ferroelectric substrate at room temperature. The AFM order was detected by the anomalous Hall effect (AHE) and manipulated by the ferroelectric field effect as well as the piezoelectric effect in heterostructures of Pt/NiO/0.7Pb(Mg1/3Nb2/3)O3–0.3PbTiO3 (PMN–PT). The nonvolatile control of AFM order gives rise to a 33% modulation of AHE, which is further evidenced by synchrotron-based x-ray magnetic linear dichroism. Combined with the in situ piezoelectric response of AHE, we demonstrate that the ferroelectric polarization contributes mainly to the control of AFM order. Our results are expected to have broader implications for efficient spintronic devices.
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