外延
金属丰度
凝聚态物理
霍尔效应
材料科学
薄膜
物理
纳米技术
电阻率和电导率
天体物理学
量子力学
图层(电子)
星星
作者
Seung Gyo Jeong,Seungjun Lee,Seungjun Lee,B. N. Lin,Zhifei Yang,In Hyeok Choi,Jin Young Oh,Sehwan Song,Sang‐Hoon Lee,Sang‐Hoon Lee,Sreejith G. Nair,Rashmi Choudhary,Jitendra C. Parikh,Sungkyun Park,Woo Seok Choi,Jong Seok Lee,James M. LeBeau,Tony Low,Bharat Jalan
标识
DOI:10.1073/pnas.2500831122
摘要
The anomalous Hall effect (AHE), a hallmark of time-reversal symmetry breaking, has been reported in rutile RuO 2 , a debated metallic altermagnetic candidate. Previously, AHE in RuO 2 was observed only in strain-relaxed thick films under extremely high magnetic fields (~50 T). Yet, in ultrathin strained films with distinctive anisotropic electronic structures, there are no reports, likely due to disorder and defects suppressing metallicity thus hindering its detection. Here, we demonstrate that ultrathin, fully strained 2 nm TiO 2 / t nm RuO 2 /TiO 2 (110) heterostructures, grown by hybrid molecular beam epitaxy, retain metallicity and exhibit a sizeable AHE at a significantly lower magnetic field (< 9 T). Density functional theory calculations reveal that epitaxial strain stabilizes a noncompensated magnetic ground state and reconfigures magnetic ordering in RuO 2 (110) thin films. These findings establish ultrathin RuO 2 as a platform for strain-engineered magnetism and underscore the transformative potential of epitaxial design in advancing spintronic technologies.
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