| Literature DB >> 28058649 |
Ying-Yu Lai1, Tsu-Chi Chang1, Ya-Chen Li1, Tien-Chang Lu2, Shing-Chung Wang1.
Abstract
In this work, we report on electrically pumped III-N microcavity (MC) light emitters incorporating oxide confinement apertures. The utilized SiO2 aperture can provide a planar ITO design with a higher index contrast (~1) over other previously reported approaches. The fabricated MC light emitter with a 15-μm-aperture shows a turn-on voltage of 3.3 V, which is comparable to conventional light emitting diodes (LEDs), showing a good electrical property of the proposed structure. A uniform light output profile within the emission aperture suggesting the good capability of current spreading and current confinement of ITO and SiO2 aperture, respectively. Although the quality factor (Q) of fabricated MC is not high enough to achieve lasing action (~500), a superlinear emission can still be reached under a high current injection density (2.83 kA/cm2) at 77 K through the exciton-exciton scattering, indicating the high potential of this structure for realizing excitonic vertical-cavity surface-emitting laser (VCSEL) action or even polariton laser after fabrication optimization.Entities:
Keywords: Electrically pumped; Light emitting diodes (LEDs); Microcavity; Oxide aperture
Year: 2017 PMID: 28058649 PMCID: PMC5216006 DOI: 10.1186/s11671-016-1801-2
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic of the proposed oxide-confined electrically pumped III-N MC structure
Fig. 2a Top view of device after ITO deposition. b Near-field images of half-cavity devices with various apertures under 7 mA injection current at RT. c Emission spectrum of a half-cavity device with a 15-μm-diameter oxide aperture. d Voltage-current characteristics of whole-cavity device with different aperture sizes at RT. e Extracted turn-on voltages of whole-cavity device as a function of diameter of oxide aperture
Fig. 3a RT spectra of a 15-μm-aperture MC device under different injection currents. b RT emission spectrum of a 15-μm-aperture MC device operated at 0.1 μA current injection. Green dashed lines represent the fitting curves of each transverse optical mode, and red dashed lines depict the summarized fitting curves. c Emission intensities and d linewidths of gain peak and FP modes extracted from the measured RT spectra as a function of injection current
Fig. 4a Emission spectra of a 15-μm-aperture MC device under different injection currents at 77 K. b Measured emission intensities of gain peak and FP1 at 77 K as a function of injection current. Emission intensities of (c) gain peak and (d) FP1 in log scale vs injection current (linear scale) at 77 K. Black fitting curves correspond to the intensity variation vs injection current