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January 17, 2026Applied Physics Letters1 citationsOpen Access

Coherent transport in strongly correlated perovskite-manganite quantum wells

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TETatsuro EndoYAY ArakiMSMunetoshi Seki

Key Points

  • To investigate coherent charge transport in perovskite manganite quantum wells despite strong electron correlations.
  • Conducted experiments on tunnel diodes incorporating an epitaxial thin layer of LSMO.
  • Utilized a tight-binding model to analyze quantum-well states and electronic structure.
  • Observed oscillatory conduction indicative of coherent transport.
  • Identified oscillations in conduction not previously seen in strongly correlated oxides.
  • Demonstrated that coherent transport can occur in high-quality epitaxial perovskite manganites despite strong Coulomb interactions.
  • Confirmed the presence of discrete quantum-well states using theoretical models.

Abstract

Perovskite transition metal oxides (TMOs) are hallmark systems for studying electron correlations, with strong Coulomb interactions reaching the electron volt scale. Such interactions generally hinder coherent charge transport, limiting its observation to only moderately correlated TMOs. Among TMOs with strong electron correlations, the ferromagnetic perovskite manganite La1−xSrxMnO3 (LSMO) has attracted significant attention for spintronics applications due to its half-metallic nature and robust ferromagnetism, with a Curie temperature above room temperature. In this Letter, we report the emergence of oscillatory conduction in tunnel diodes incorporating an epitaxial thin LSMO layer—a phenomenon not previously observed in strongly correlated oxides. The observed oscillations originate from discrete quantum-well states formed via quantum confinement, indicating coherent transport across the LSMO layer. These quantum-well states are quantitatively explained using a tight-binding model tailored for the electronic structure of LSMO. Our findings demonstrate that high-quality epitaxial perovskite manganites can sustain coherent transport, even in the presence of strong electron correlations, offering avenues for oxide-based quantum and spintronics devices.

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Cite This Study

Endo et al. (2026) studied this question.

synapsesocial.com/papers/696b2655d2a12237a93499f4https://doi.org/10.1063/5.0303809
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