论文标题

外延铁磁氧化物中的Weyl Fermions的量子传输证据

Quantum transport evidence of Weyl fermions in an epitaxial ferromagnetic oxide

论文作者

Takiguchi, Kosuke, Wakabayashi, Yuki K., Irie, Hiroshi, Krockenberger, Yoshiharu, Otsuka, Takuma, Sawada, Hiroshi, Nikolaev, Sergey A., Das, Hena, Tanaka, Masaaki, Taniyasu, Yoshitaka, Yamamoto, Hideki

论文摘要

发生在磁铁中的磁性Weyl Fermions具有与Weyl节点对相关的新型传输现象,并且它们都是科学和技术兴趣的,并且具有用于高性能电子,Spintronics和量子计算的潜力。尽管已经预测在各种氧化物中存在磁性韦尔基因,但它们在氧化物材料中存在的证据仍然难以捉摸。 SRRUO3是一种4D铁磁金属,通常用作氧化物异质结构中的外延导电层,为寻求磁性Weyl Fermions的存在提供了有前途的机会。由机器学习技术驱动的晚期氧化薄膜制备技术可能可以访问此类拓扑问题。在这里,我们在外延铁磁性氧化物SRRUO3中显示了磁性Weyl费物的直接量子传输证据:不饱和线性的线性阳性磁力耐药(MR),手性 - 静脉诱导的负MR,PI BERRY沿循环蛋白环Orbits Orbits Orbits Orbits,轻度循环量和高量子量的质量和高量子迁移的MR,大约10000 cm2/vs/vs/vs。我们采用了机器学习辅助的分子束外延(MBE)来合成SRRUO3膜,其质量足够高以探测其固有的量子传输特性。我们还阐明了磁性Weyl费米子运输的疾病依赖性,并为Weyl运输提供了全新的图表,该图为访问拓扑上的非平凡运输现象提供了明确的指南。我们的结果将SRRUO3建立为磁性Weyl半准和拓扑氧化电子电子作为新的研究领域。

Magnetic Weyl fermions, which occur in magnets, have novel transport phenomena related to pairs of Weyl nodes, and they are, of both, scientific and technological interest, with the potential for use in high-performance electronics, spintronics and quantum computing. Although magnetic Weyl fermions have been predicted to exist in various oxides, evidence for their existence in oxide materials remains elusive. SrRuO3, a 4d ferromagnetic metal often used as an epitaxial conducting layer in oxide heterostructures, provides a promising opportunity to seek for the existence of magnetic Weyl fermions. Advanced oxide thin film preparation techniques, driven by machine learning technologies, may allow access to such topological matter. Here we show direct quantum transport evidence of magnetic Weyl fermions in an epitaxial ferromagnetic oxide SrRuO3: unsaturated linear positive magnetoresistance (MR), chiral-anomaly-induced negative MR, Pi Berry phase accumulated along cyclotron orbits, light cyclotron masses and high quantum mobility of about 10000 cm2/Vs. We employed machine-learning-assisted molecular beam epitaxy (MBE) to synthesize SrRuO3 films whose quality is sufficiently high to probe their intrinsic quantum transport properties. We also clarified the disorder dependence of the transport of the magnetic Weyl fermions, and provided a brand-new diagram for the Weyl transport, which gives a clear guideline for accessing the topologically nontrivial transport phenomena. Our results establish SrRuO3 as a magnetic Weyl semimetal and topological oxide electronics as a new research field.

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