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An AlGaN Core-Shell Tunnel Junction Nanowire Light-Emitting Diode Operating in the Ultraviolet-C Band

  • S. M. Sadaf
  • , S. Zhao
  • , Y. Wu
  • , Y. H. Ra
  • , X. Liu
  • , S. Vanka
  • , Z. Mi*
  • *Corresponding author for this work
  • McGill University
  • University of Michigan, Ann Arbor

Research output: Contribution to journalJournal articlepeer-review

Abstract

To date, semiconductor light emitting diodes (LEDs) operating in the deep ultraviolet (UV) spectral range exhibit very low efficiency due to the presence of large densities of defects and extremely inefficient p-type conduction of conventional AlGaN quantum well heterostructures. We have demonstrated that such critical issues can be potentially addressed by using nearly defect-free AlGaN tunnel junction core-shell nanowire heterostructures. The core-shell nanowire arrays exhibit high photoluminescence efficiency (∼80%) in the UV-C band at room temperature. With the incorporation of an epitaxial Al tunnel junction, the p-(Al)GaN contact-free nanowire deep UV LEDs showed nearly one order of magnitude reduction in the device resistance, compared to the conventional nanowire p-i-n device. The unpackaged Al tunnel junction deep UV LEDs exhibit an output power >8 mW and a peak external quantum efficiency ∼0.4%, which are nearly one to two orders of magnitude higher than previously reported AlGaN nanowire devices. Detailed studies further suggest that the maximum achievable efficiency is limited by electron overflow and poor light extraction efficiency due to the TM polarized emission.

Original languageEnglish
Pages (from-to)1212-1218
Number of pages7
JournalNano Letters
Volume17
Issue number2
DOIs
StatePublished - 2017.02.8

Keywords

  • AlGaN
  • core-shell
  • light-emitting diode
  • molecular beam epitaxy
  • Nanowire
  • tunnel junction

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