English

Site-selective enhancement of Eu emission in delta-doped GaN

Materials Science 2026-03-20 v1 Optics

Abstract

Europium-doped gallium nitride (GaN:Eu) is a promising platform for classical and quantum optoelectronic applications. When grown using organometallic vapor-phase epitaxy, the dominant red emission from Eu exhibits an inhomogeneous photoluminescence (PL) spectrum due to contributions from several non-equivalent incorporation sites that can be distinguished with combined excitation emission spectroscopy. Energy transfer from the GaN bandgap to the majority site is inefficient, limiting the performance of GaN:Eu LEDs and resulting in an inhomogeneous emission spectrum dominated by disproportionate contributions from minority sites. In this work, we use site-selective spectroscopy to characterize the photoluminescence properties of delta-doped structures with alternating doped and undoped layers of varying thicknesses and demonstrate that they selectively enhance emission from the majority site when compared to uniformly-doped samples. Samples with 2-nm and 10-nm doped layers show much greater PL intensity per Eu concentration as well as more efficient energy transfer to the majority site, which are both highly desirable for creating power-efficient LEDs. Meanwhile, a sample with 1-nm doped layers shows emission only from the majority site, resulting in a narrow, homogeneous emission spectrum that is desirable for quantum technologies. This utilization of delta-doping has the potential to be broadly applicable for engineering desirable defect properties in rare-earth doped semiconductors.

Keywords

Cite

@article{arxiv.2512.15005,
  title  = {Site-selective enhancement of Eu emission in delta-doped GaN},
  author = {Amelia R. Klein and Hayley J. Austin and Fumikazu Murakami and Jamie Ford and Jun Tatebayashi and Masayoshi Tonouchi and Yasufumi Fujiwara and Volkmar Dierolf and Lee C. Bassett and Brandon Mitchell},
  journal= {arXiv preprint arXiv:2512.15005},
  year   = {2026}
}

Comments

12 pages, 11 figures (main text plus supplementary information)