Advanced Science (Feb 2024)

Plasma‐Induced 2D Electron Transport at Hetero‐Phase Titanium Oxide Interface

  • Kehan Yu,
  • Xinglong Li,
  • Haoyu Zhao,
  • Chen Ma,
  • Zhongyue Wang,
  • Peng Lv,
  • Ertao Hu,
  • Jiajin Zheng,
  • Wei Wei,
  • Kostya (Ken) Ostrikov

DOI
https://doi.org/10.1002/advs.202304919
Journal volume & issue
Vol. 11, no. 5
pp. n/a – n/a

Abstract

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Abstract Interfaces of metal oxide heterojunctions display a variety of intriguing physical properties that enable novel applications in spintronics, quantum information, neuromorphic computing, and high‐temperature superconductivity. One such LaAlO3/SrTiO3 (LAO/STO) heterojunction hosts a 2D electron liquid (2DEL) presenting remarkable 2D superconductivity and magnetism. However, these remarkable properties emerge only at very low temperatures, while the heterostructure fabrication is challenging even at the laboratory scale, thus impeding practical applications. Here, a novel plasma‐enabled fabrication concept is presented to develop the TiO2/Ti3O4 hetero‐phase bilayer with a 2DEL that exhibits features of a weakly localized Fermi liquid even at room temperature. The hetero‐phase bilayer is fabricated by applying a rapid plasma‐induced phase transition that transforms a specific portion of anatase TiO2 thin film into vacancy‐prone Ti3O4 in seconds. The underlying mechanism relies on the screening effect of the achieved high‐density electron liquid that suppresses the electron‐phonon interactions. The achieved “adiabatic” electron transport in the hetero‐phase bilayer offers strong potential for low‐loss electric or plasmonic circuits and hot electron harvesting and utilization. These findings open new horizons for fabricating diverse multifunctional metal oxide heterostructures as an innovative platform for emerging clean energy, integrated photonics, spintronics, and quantum information technologies.

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