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229 nm UV LEDs on aluminum nitride single crystal substrates using p-type silicon for increased hole injection

  • Dong Liu
  • , Sang June Cho
  • , Jeongpil Park
  • , Jung Hun Seo
  • , Rafael Dalmau
  • , Deyin Zhao
  • , Kwangeun Kim
  • , Jiarui Gong
  • , Munho Kim
  • , In Kyu Lee
  • , John D. Albrecht
  • , Weidong Zhou
  • , Baxter Moody
  • , Zhenqiang Ma
  • University of Wisconsin-Madison
  • HexaTech, Inc.
  • University of Texas at Arlington
  • Michigan State University

Research output: Contribution to journalArticlepeer-review

75 Scopus citations

Abstract

AlGaN based 229 nm light emitting diodes (LEDs), employing p-type Si to significantly increase hole injection, were fabricated on single crystal bulk aluminum nitride (AlN) substrates. Nitride heterostructures were epitaxially deposited by organometallic vapor phase epitaxy and inherit the low dislocation density of the native substrate. Following epitaxy, a p-Si layer is bonded to the heterostructure. LEDs were characterized both electrically and optically. Owing to the low defect density films, large concentration of holes from p-Si, and efficient hole injection, no efficiency droop was observed up to a current density of 76 A/cm2 under continuous wave operation and without external thermal management. An optical output power of 160 μW was obtained with the corresponding external quantum efficiency of 0.03%. This study demonstrates that by adopting p-type Si nanomembrane contacts as a hole injector, practical levels of hole injection can be realized in UV light-emitting diodes with very high Al composition AlGaN quantum wells, enabling emission wavelengths and power levels that were previously inaccessible using traditional p-i-n structures with poor hole injection efficiency.

Original languageEnglish
Article number081101
JournalApplied Physics Letters
Volume112
Issue number8
DOIs
StatePublished - Feb 19 2018

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