| Literature DB >> 29396762 |
Dong-Bo Wang1,2, Jin-Chuan Zhang3, Feng-Min Cheng1,2, Yue Zhao1,2, Ning Zhuo1, Shen-Qiang Zhai1, Li-Jun Wang1,2, Jun-Qi Liu1,2, Shu-Man Liu1,2, Feng-Qi Liu4, Zhan-Guo Wang1.
Abstract
In this work, quantum cascade lasers (QCLs) based on strain compensation combined with two-phonon resonance design are presented. Distributed feedback (DFB) laser emitting at ~ 4.76 μm was fabricated through a standard buried first-order grating and buried heterostructure (BH) processing. Stable single-mode emission is achieved under all injection currents and temperature conditions without any mode hop by the optimized antireflection (AR) coating on the front facet. The AR coating consists of a double layer dielectric of Al2O3 and Ge. For a 2-mm laser cavity, the maximum output power of the AR-coated DFB-QCL was more than 170 mW at 20 °C with a high wall-plug efficiency (WPE) of 4.7% in a continuous-wave (CW) mode.Entities:
Keywords: Distributed feedback; Facet coating; Quantum cascade laser; Stable single mode
Year: 2018 PMID: 29396762 PMCID: PMC5796954 DOI: 10.1186/s11671-018-2455-z
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic illustrating the model of finite DFB cavity with antireflection coating on the longitudinal optical mode profile
Fig. 2a The two red curves are the mode loss of high- and low-frequency mode respectively. The black curve is the differential mode loss between the two band-edge modes labeled as Δ. The inset shows the mode profile calculated for the low- and high-frequency modes, for a single period of the grating. b The calculated mode loss spectrum based on transfer matrix simulation with different AR coatings
Fig. 3Subthreshold DC spectrum of device measured at 30 °C
Fig. 4a, b Output power versus current of the DFB laser operated in CW mode at different heat sink temperatures between 20 and 90 °C along with V-I curves. c, d CW lasing spectra at different currents from 150 to 250 mA with a step of 25 mA at 20 °C
Fig. 5Single-mode emission spectra of the DFB laser at a driving 1.1 threshold current for different heat sink temperatures of 20–90 °C. The insert shows the linearly fit tuning characteristics of the lasing frequency with temperature
Fig. 6Wall-plug efficiency as a function of the electrical power dissipation for the 2-mm-long HR and AR-coated DFB-QCL