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January 17, 2026Applied Physics Letters0 citations

Solution-processed epitaxial PdRhO2 metallic films as Schottky electrodes

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RWRenhuai WeiCGCheng GaoYMYuhao Meng

Key Points

  • The aim is to synthesize high-quality PdRhO2 thin films and analyze their electrical properties as Schottky electrodes.
  • Synthesized PdRhO2 thin films using a low-rhodium solution deposition strategy.
  • Conducted structural and electrical transport analyses for performance evaluation.
  • Performed first-principles calculations to investigate electronic states at the Fermi level.
  • Fabricated a PdRhO2/β-Ga2O3 Schottky heterojunction to assess rectification properties.
  • Achieved epitaxial growth despite a significant lattice mismatch.
  • Observed a high rectification ratio of approximately 10^9.
  • Determined Schottky barrier height of 1.13 ± 0.06 eV, exceeding Schottky–Mott predictions.
  • Identified improvement in both film quality and electrical performance through reduced lattice mismatch.

Abstract

Metallic delafossite PdRhO2 thin films were synthesized using a low-rhodium solution deposition strategy, achieving epitaxial growth despite a significant lattice mismatch. Comparative structural and electrical transport analyses demonstrate that reducing the lattice mismatch significantly improves both film quality and electrical performance. First-principles calculations reveal that the metallic conductivity in PdRhO2 originates primarily from Pd-derived states and their hybridization with Rh 4d orbitals at the Fermi level. Furthermore, a PdRhO2/β-Ga2O3 Schottky heterojunction was fabricated, exhibiting a rectification ratio on the order of ∼109 and a Schottky barrier height of 1.13 ± 0.06 eV. This barrier height exceeds the prediction of the Schottky–Mott rule, which is attributed to a naturally formed interfacial dipole layer. These findings offer a cost-effective pathway to epitaxial Rh-based thin films and highlight their potential for application in electronic integrated circuits.

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Cite This Study

Wei et al. (2026) studied this question.

synapsesocial.com/papers/696b26b2d2a12237a9349f24https://doi.org/10.1063/5.0290502
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