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Trap-induced degradation mechanisms in quasi-vertical GaN PiN diodes under the combined effects of high-energy heavy ion irradiation and off-state reverse bias

  • J. F. Qian
  • , F. Zhou*
  • , C. Zou
  • , Y. T. Yu
  • , C. R. Shu
  • , M. Zhang
  • , T. Q. Wang
  • , Z. L. Zhang
  • , W. Z. Xu
  • , F. F. Ren
  • , D. Zhou
  • , D. J. Chen
  • , Y. D. Zheng
  • , R. Zhang
  • , H. Lu*
  • *Corresponding author for this work
  • Nanjing University
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Wide-bandgap GaN power rectifiers hold promise for space electronic systems, particularly as freewheeling diodes in low-voltage secondary power supplies, yet their susceptibility to high-energy heavy ion irradiation remains largely unexplored. In this study, an irradiation-hardened quasi-vertical GaN PiN diode with a beveled-mesa termination structure is fabricated, exhibiting only an 8% reduction in blocking voltage under 1.3 GeV Ta ion irradiation with a high fluence of ∼107 ions/cm2. This robustness enables in-depth analysis of electrical degradation under the synergistic effects of irradiation and bias voltage. Forward I-V analysis reveals reductions in minority carrier lifetime, mobility, and diffusion length. Temperature-dependent reverse I-V characteristics show an upward shift in the transition voltage from variable range hopping leakage to space-charge-limited current conduction in irradiated devices, with additional involvement of trap-assisted Poole-Frenkel emission. deep-level transient spectroscopy identifies a shallow trap E2 (EC − 0.1 eV) and two deep traps, E1 (EC − 0.43 eV) and H1 (Ev + 0.68 eV). E1 exhibits a twofold increase in trap density post-irradiation and is attributed to dislocation-related defects or Ga vacancies. H1 likely originates from dissociation of Mg-H complexes under irradiation, forming MgGa and related complexes such as MgGa-VN. These traps, driven by the high electronic energy loss, could introduce localized recombination centers and scattering sites. These results offer critical insights into the irradiation-induced degradation mechanisms and design strategies for GaN-based power diodes (e.g., PiN diodes and Schottky diodes) and high electron mobility transistors in aerospace electronic systems.

Original languageEnglish
Article number012101
JournalApplied Physics Letters
Volume128
Issue number1
DOIs
StatePublished - 5 Jan 2026

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