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MAPLE‑deposited PFO films: influence of the laser fluence and repetition rate on the film emission and morphology
- Publication Year :
- 2015
-
Abstract
- The Matrix-Assisted Pulsed Laser Evaporation (MAPLE) technique is emerging as an alternative route to the conventional methods for depositing organic materials, although the MAPLE-deposited films very often present high surface roughness and characteristic morphological features. Films of the blue-emitting polymer, poly(9,9-dioctylfluorene)—PFO, have been deposited by MAPLE to investigate the influence of the laser fluence and repetition rate on both their topography and emission properties. The laser fluence has been changed from 150 up to 450 mJ/cm2 , while laser repetition rates of 2 and 10 Hz have been considered. The interplay/relationship between the topography and the emission properties of the MAPLE-deposited films has been studied by confocal microscopy, photoluminescence spectrometry and atomic force microscopy. It has been found that under high irradiation (fluence of 450 mJ/cm2) conditions, the sample surface is characterized by bubbles presenting the intrinsic PFO blue emission. Instead, while improvements in the film morphology can be observed for lowered fluence and laser repetition rate, green emission becomes predominant in such conditions. Such result is very interesting to better understand the MAPLE ablation mechanism, which is discussed in this study.
- Subjects :
- SOLAR-CELLS
Materials science
Photoluminescence
EFFICIENCY
Physics and Astronomy (miscellaneous)
General Physics and Astronomy
Surface finish
engineering.material
Fluence
law.invention
GREEN EMISSION
Optics
THIN-FILMS
law
CHAIN CONFORMATION
Irradiation
chemistry.chemical_classification
Maple
business.industry
ORIGIN
General Engineering
Polymer
Laser
Evaporation (deposition)
EVAPORATION
chemistry
engineering
Optoelectronics
business
CONJUGATED POLYMERS
POLY(9,9-DIOCTYLFLUORENE)
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....be963b3960c3229f00087d875a4a4b36