Engineering of Orbital Hybridization: An Exotic Strategy to Manipulate Orbital Current

  • Kun Zheng
  • , Haonan Wang
  • , Ju Chen
  • , Hongxin Cui
  • , Jing Meng
  • , Zheng Li
  • , Cuimei Cao
  • , Haoyu Lin
  • , Yuhao Wang
  • , Keqi Xia
  • , Jiahao Liu
  • , Xiaoyu Feng
  • , Hui Zhang
  • , Bocheng Yu
  • , Jiyuan Li
  • , Yang Xu
  • , Zhenzhong Yang*
  • , Shijing Gong*
  • , Qingfeng Zhan*
  • , Tian Shang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Current-induced spin-orbit torque (SOT) plays a crucial role in the next-generation spin-orbitronics. Enhancing its efficiency is both fundamentally and practically interesting and remains a challenge to date. Recently, orbital counterparts of spin effects that do not rely on the spin-orbit coupling (SOC) have been found as an alternative mechanism to realize it. This work highlights the engineering of copper oxidation states for manipulating the orbital current and its torque in the (Formula presented.) -based heterostructures. The orbital hybridization and thus the orbital-Rashba-Edelstein effect at the (Formula presented.) /Cu interfaces are significantly enhanced by increasing the copper oxidation state, yielding a torque efficiency that is almost ten times larger than the conventional heavy metals. The (Formula presented.) (Formula presented.) /Cu interface, rather than the widely accepted CuO/Cu interface, is revealed to account for the enhanced SOT performance in the (Formula presented.) -based heterostructures. In addition, the torque efficiency can be alternatively switched between high and low thresholds through the redox reaction. The current results establish an exotic and robust strategy for engineering the orbital current and SOT for spin-orbitronics, which applies to other weak-SOC materials.

Original languageEnglish
JournalAdvanced Functional Materials
DOIs
StateAccepted/In press - 2026

Keywords

  • orbital current
  • orbital hybridization
  • orbital-Rashba-Edelstein effect
  • redox reaction
  • spin-orbit torque

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