| Literature DB >> 29168002 |
Zhenyu Tang1, Kunping Guo1,2, Yulai Gao3,4, Saihu Pan2, Changfeng Si1, Tao Xu5,6, Bin Wei7.
Abstract
This paper demonstrates the lasing and transport properties of a green conjugated polymer, namely POFP. High photoluminescence yields and excellent electron transport of POFP film make it promising for gain media. Low threshold value of 4.0 μJ/cm2 for amplified spontaneous emissions under a pulsed Nd:YAG laser at 355 nm was obtained, as well as a high Q-factor of 159. An inverted waveguide microcavity scheme has been developed to fabricate diode-pumped organic solid lasers (OSLs) using POFP. Gain narrowing with significant radiance increase was observed in the devices, giving evidence of the interference enhancement induced by microcavity and the lasing properties of POFP.Entities:
Keywords: Diode-pumped lasers; Guided wave applications; Lasing materials; Transport properties
Year: 2017 PMID: 29168002 PMCID: PMC5700016 DOI: 10.1186/s11671-017-2371-7
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1a The molecular structure of POFP. b The absorption, PL, and ASE spectra of POFP thin films
Fig. 2a Dependence of FWHM (squares) and peak intensity (spheres) of POFP films (135 nm) at various pump intensities. b The evolution of emission spectrum of POFP films (135 nm) with increasing pump intensity
The relationship between POFP film thickness and threshold energy
| POFP film thickness (nm) | 60 | 70 | 110 | 125 | 135 | 165 |
| Threshold energy (μJ/cm2) | 11.2 | 7.5 | 6.4 | 6.0 | 4.0 | 8.4 |
Fig. 3The J–V characteristics of a hole-only devices and b electron-only devices. The structures of the devices are shown in the insets
Fig. 4The EL spectrum of AND:2wt%DSA-ph and the absorbance spectrum of POFP
Fig. 5a Structures of diode-pumped OSL device E and device F. b Molecular structures of the emitting materials used in the devices
Fig. 6Evolution of EL spectra with increasing voltage of electrically pumped device E a and device F b. The insets show the dependences of radiance and FWHM at various power densities