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Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs

In order to improve the performance of OLEDs, a host–guest mixture was used as an emissive layer. To have better host properties, a mixture of different materials with suitable properties can also be used as a host. In this study, we used a mixture of a polymer and a small molecule as the host and s...

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Autores principales: Meer, Bushra Basharatali, Sharma, Dhruv, Tak, Swapnil, Bisen, Gauri Govardhan, Shirsat, Mahendra D., Girija, Kalpathy Ganapathy, Ghosh, Sanjay Sanatan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10652355/
https://www.ncbi.nlm.nih.gov/pubmed/38020036
http://dx.doi.org/10.1039/d3ra06271f
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author Meer, Bushra Basharatali
Sharma, Dhruv
Tak, Swapnil
Bisen, Gauri Govardhan
Shirsat, Mahendra D.
Girija, Kalpathy Ganapathy
Ghosh, Sanjay Sanatan
author_facet Meer, Bushra Basharatali
Sharma, Dhruv
Tak, Swapnil
Bisen, Gauri Govardhan
Shirsat, Mahendra D.
Girija, Kalpathy Ganapathy
Ghosh, Sanjay Sanatan
author_sort Meer, Bushra Basharatali
collection PubMed
description In order to improve the performance of OLEDs, a host–guest mixture was used as an emissive layer. To have better host properties, a mixture of different materials with suitable properties can also be used as a host. In this study, we used a mixture of a polymer and a small molecule as the host and studied the effect of thermal annealing on the emissive layer properties by using Ir(ppy)(3) as the emitter. UV-visible absorption, steady-state and time-resolved photoluminescence, scanning electron microscopy, atomic force microscopy, and optical microscopic studies were performed to study the film properties. Devices were fabricated and their current–voltage and luminance–voltage characteristics were studied. Charge-carrier mobility in the devices was studied by dark CELIV and transient electroluminescence methods. We show that, below the glass transition temperature of the polymer, the small molecules formed aggregates due to thermal annealing, which was beneficial for the device performance in the lower-temperature range, mainly due to the improved electron mobility. However, this aggregate formation was detrimental in the higher-temperature range, as it led to inefficient energy transfer due to the increased pure phase formation. At temperatures above the glass transition temperature of the polymer, the small molecules were seen to be distributed more uniformly into the polymer matrix. However, as a result of the degradation of the polymer property due to degradation of the primary chain of the phenyl ring of the polymer, this uniform distribution was not of any use and the device performance deteriorated.
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spelling pubmed-106523552023-11-16 Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs Meer, Bushra Basharatali Sharma, Dhruv Tak, Swapnil Bisen, Gauri Govardhan Shirsat, Mahendra D. Girija, Kalpathy Ganapathy Ghosh, Sanjay Sanatan RSC Adv Chemistry In order to improve the performance of OLEDs, a host–guest mixture was used as an emissive layer. To have better host properties, a mixture of different materials with suitable properties can also be used as a host. In this study, we used a mixture of a polymer and a small molecule as the host and studied the effect of thermal annealing on the emissive layer properties by using Ir(ppy)(3) as the emitter. UV-visible absorption, steady-state and time-resolved photoluminescence, scanning electron microscopy, atomic force microscopy, and optical microscopic studies were performed to study the film properties. Devices were fabricated and their current–voltage and luminance–voltage characteristics were studied. Charge-carrier mobility in the devices was studied by dark CELIV and transient electroluminescence methods. We show that, below the glass transition temperature of the polymer, the small molecules formed aggregates due to thermal annealing, which was beneficial for the device performance in the lower-temperature range, mainly due to the improved electron mobility. However, this aggregate formation was detrimental in the higher-temperature range, as it led to inefficient energy transfer due to the increased pure phase formation. At temperatures above the glass transition temperature of the polymer, the small molecules were seen to be distributed more uniformly into the polymer matrix. However, as a result of the degradation of the polymer property due to degradation of the primary chain of the phenyl ring of the polymer, this uniform distribution was not of any use and the device performance deteriorated. The Royal Society of Chemistry 2023-11-16 /pmc/articles/PMC10652355/ /pubmed/38020036 http://dx.doi.org/10.1039/d3ra06271f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Meer, Bushra Basharatali
Sharma, Dhruv
Tak, Swapnil
Bisen, Gauri Govardhan
Shirsat, Mahendra D.
Girija, Kalpathy Ganapathy
Ghosh, Sanjay Sanatan
Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs
title Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs
title_full Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs
title_fullStr Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs
title_full_unstemmed Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs
title_short Effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in OLEDs
title_sort effect of thermal annealing on an emissive layer containing a blend of a small molecule and polymer as host for application in oleds
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10652355/
https://www.ncbi.nlm.nih.gov/pubmed/38020036
http://dx.doi.org/10.1039/d3ra06271f
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