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Review of structure-dependent transport properties in SrIrO3

  • Mingjia Chen
  • , Shuanhu Wang
  • , Yirui Chen
  • , Dailei Ren
  • , Jiatai Wang
  • , Jialiang Yao
  • , Kexin Jin
  • , Hong Yan
  • Northwestern Polytechnical University Xian

Research output: Contribution to journalReview articlepeer-review

Abstract

As a prominent member of the 5d transition metal oxide family, SrIrO3 has emerged as a critical platform for investigating correlated topological states due to the complex interaction between strong spin–orbit coupling, moderate electron correlations, and structural flexibility. This review summarizes recent advances in the study of transport properties of SrIrO3. Both bulk and thin-film forms of this material exhibit a range of transport phenomena, including metallic conductivity modulated by correlation effects, large anomalous Hall effects originating from non-trivial band topology, and metal–insulator transitions induced by external strain, electric fields, or reduced dimensionality. In heterostructures and superlattices, in particular, interfacial charge transfer, orbital reconstruction, and proximity effects can give rise to emergent magnetism and topological transport, such as highly efficient spin–orbit torques. These observed behaviors suggest the potential realization of a Weyl semimetal or topological crystalline insulator phase in SrIrO3. Recent progress in SrIrO3 underscores the importance of further exploring novel quantum phases within its phase diagram via multi-field control, clarifying the underlying microscopic mechanisms using advanced characterization techniques, and developing low-power electronics and spintronic devices leveraging its intertwined topological and correlated properties.

Original languageEnglish
Article number067301
JournalChinese Physics B
Volume35
Issue number6
DOIs
StatePublished - Jun 2026

Keywords

  • 5d iridates
  • SrIrOfilms
  • spin-orbit coupling proximity-induced magnetism

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