Scattering-dependent transport of SrRuO3 films: From Weyl fermion transport to hump-like Hall effect anomaly
Shingo Kaneta-Takada, Yuki K. Wakabayashi, Yoshiharu Krockenberger,, Hiroshi Irie, Shinobu Ohya, Masaaki Tanaka, Yoshitaka Taniyasu, and Hideki, Yamamoto

TL;DR
This study investigates how scattering influences electronic transport in SrRuO3 films, revealing regimes where Weyl fermion transport occurs and clarifying that the hump-like Hall effect anomaly is not topologically intrinsic.
Contribution
It demonstrates that transport phenomena in SrRuO3 depend on defect density and temperature, classifying regimes and clarifying the origin of the Hall effect anomaly.
Findings
Weyl fermion transport appears in the clean regime.
Hump-like Hall effect is only in the dirty regime.
The Hall anomaly is not topologically intrinsic.
Abstract
Recent observation of quantum transport phenomena of Weyl fermions has brought much attention to 4d ferromagnetic perovskite SrRuO3 as a magnetic Weyl semimetal. Besides, the hump-like Hall effect anomaly, which might have a topological origin, has also been reported for this material. Here, we show that the emergence of such phenomena is governed by the degree of scattering determined by the defect density (Ru-deficiency- and/or interface-driven-defect scattering) and measurement temperature (phonon scattering), where the former is controlled by varying the growth conditions of the SrRuO3 films in molecular beam epitaxy as well as the film thickness. The resulting electronic transport properties can be classified into three categories: clean, intermediate, and dirty regimes. The transport of Weyl fermions emerges in the clean regime, whereas that of topologically trivial conduction…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Electronic and Structural Properties of Oxides · Magnetic and transport properties of perovskites and related materials
