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Impacts of vacancy complexes on the room-temperature photoluminescence lifetimes of state-of-the-art GaN substrates, epitaxial layers, and Mg-implanted layers

光致发光 空位缺陷 外延 材料科学 光电子学 宽禁带半导体 图层(电子) 结晶学 化学 纳米技术
作者
Shigefusa F. Chichibu,Kohei Shima,Akira Uedono,Shoji Ishibashi,Hiroko Iguchi,Tetsuo Narita,Keita Kataoka,Ryo Tanaka,Shinya Takashima,Katsunori UENO,Masaharu Edo,Hirotaka Watanabe,Atsushi Tanaka,Yoshio Honda,Jun Suda,Hiroshi Amano,Tetsu Kachi,Toshihide Nabatame,Yoshihiro Irokawa,Yasuo Koide
出处
期刊:Journal of Applied Physics [American Institute of Physics]
卷期号:135 (18) 被引量:7
标识
DOI:10.1063/5.0201931
摘要

For rooting the development of GaN-based optoelectronic devices, understanding the roles of midgap recombination centers (MGRCs), namely, nonradiative recombination centers and deep-state radiative recombination centers, on the carrier recombination dynamics is an essential task. By using the combination of time-resolved photoluminescence and positron annihilation spectroscopy (PAS) measurements, the origins of major MGRCs in the state-of-the-art GaN epilayers, bulk crystals, and Mg-implanted layers were identified, and their concentrations were quantified for deriving the capture coefficients of minority carriers. In this article, potential standardization of the room-temperature photoluminescence lifetime for the near-band-edge emission (τPLRT) as the concentration of major MGRCs well below the detection limit of PAS is proposed. For n-GaN substrates and epilayers grown from the vapor phase, τPLRT was limited by the concentration of carbon on N sites or divacancies comprising a Ga vacancy (VGa) and a N vacancy (VN), [VGaVN], when carbon concentration was higher or lower, respectively, than approximately 1016 cm−3. Here, carbon and VGaVN act as major deep-state radiative and nonradiative recombination centers, respectively, while major MGRCs in bulk GaN crystals were identified as VGa(VN)3 vacancy clusters in Na-flux GaN and VGa or VGaVN buried by a hydrogen and/or VGa decorated with oxygen on N sites, VGa(ON)3–4, in ammonothermal GaN. The values of τPLRT in n-GaN samples are compared with those of p-GaN, in which τPLRT was limited by the concentration of VGa(VN)2 in Mg-doped epilayers and by the concentrations of VGaVN and (VGaVN)3 in Mg-implanted GaN right after the implantation and after appropriate activation annealing, respectively.

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