Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives

n-Dopants play a crucial role in improving organic electronic devices through controlled doping of organic semiconductors. Benzimidazoline-based dopants have been reported as one of the best solution-processed n-type dopant precursors. In this study, two benzimidazoline-based dopants (BIBDTO and BBI...

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Main Authors: Tang Chenqing, Li Gongchun
Format: Article
Language:English
Published: De Gruyter 2022-09-01
Series:Open Chemistry
Subjects:
Online Access:https://doi.org/10.1515/chem-2022-0202
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author Tang Chenqing
Li Gongchun
author_facet Tang Chenqing
Li Gongchun
author_sort Tang Chenqing
collection DOAJ
description n-Dopants play a crucial role in improving organic electronic devices through controlled doping of organic semiconductors. Benzimidazoline-based dopants have been reported as one of the best solution-processed n-type dopant precursors. In this study, two benzimidazoline-based dopants (BIBDTO and BBIBDTO) were prepared using benzo[1,2-b:4,5-b′]dithiophene as the 2-Ar unit, and their n-doping properties on the fullerene derivative PTEG-2 as the host material were carried out. For BIBDTO and BBIBDTO, respectively, the temperature at which 5% weight loss was achieved was 229 and 265°C. By comparing the ultraviolet-visible absorption spectroscopy, cyclic voltammetry, and density functional theory calculated data, it is found that BBIBDTO has a higher energy level, which is more favorable for charge transfer. Additionally, both the oxidative titration experiments and conductivity characterization of the dopants showed that BBIBDTO was more advantageous at low doping concentrations, and the BBIBDTO-doped PTEG-2 films obtained a conductivity of 0.15 S cm−1 at 10 mol% doping concentration. However, at high dopant concentrations, the dopant volume increases, potentially disrupting the microstructure. The highest conductivity of 0.29 S cm–1 was obtained at a BIBDTO doping concentration of 15 mol%. This study delves into the effect of benzimidazole functional groups on the doping performance of benzimidazoline-based dopant molecules, providing insight into designing novel efficient n-type dopant molecules and further selecting the type of dopant for various doping systems.
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spelling doaj.art-0523f7a33e114d98b1fe2d6a7309cc8e2022-12-22T02:02:40ZengDe GruyterOpen Chemistry2391-54202022-09-0120184084810.1515/chem-2022-0202Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivativesTang Chenqing0Li Gongchun1State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, ChinaState Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, Chinan-Dopants play a crucial role in improving organic electronic devices through controlled doping of organic semiconductors. Benzimidazoline-based dopants have been reported as one of the best solution-processed n-type dopant precursors. In this study, two benzimidazoline-based dopants (BIBDTO and BBIBDTO) were prepared using benzo[1,2-b:4,5-b′]dithiophene as the 2-Ar unit, and their n-doping properties on the fullerene derivative PTEG-2 as the host material were carried out. For BIBDTO and BBIBDTO, respectively, the temperature at which 5% weight loss was achieved was 229 and 265°C. By comparing the ultraviolet-visible absorption spectroscopy, cyclic voltammetry, and density functional theory calculated data, it is found that BBIBDTO has a higher energy level, which is more favorable for charge transfer. Additionally, both the oxidative titration experiments and conductivity characterization of the dopants showed that BBIBDTO was more advantageous at low doping concentrations, and the BBIBDTO-doped PTEG-2 films obtained a conductivity of 0.15 S cm−1 at 10 mol% doping concentration. However, at high dopant concentrations, the dopant volume increases, potentially disrupting the microstructure. The highest conductivity of 0.29 S cm–1 was obtained at a BIBDTO doping concentration of 15 mol%. This study delves into the effect of benzimidazole functional groups on the doping performance of benzimidazoline-based dopant molecules, providing insight into designing novel efficient n-type dopant molecules and further selecting the type of dopant for various doping systems.https://doi.org/10.1515/chem-2022-0202n-dopantsmolecular engineeringenergy level structureconductivity
spellingShingle Tang Chenqing
Li Gongchun
Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives
Open Chemistry
n-dopants
molecular engineering
energy level structure
conductivity
title Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives
title_full Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives
title_fullStr Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives
title_full_unstemmed Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives
title_short Impact of benzimidazole functional groups on the n-doping properties of benzimidazole derivatives
title_sort impact of benzimidazole functional groups on the n doping properties of benzimidazole derivatives
topic n-dopants
molecular engineering
energy level structure
conductivity
url https://doi.org/10.1515/chem-2022-0202
work_keys_str_mv AT tangchenqing impactofbenzimidazolefunctionalgroupsonthendopingpropertiesofbenzimidazolederivatives
AT ligongchun impactofbenzimidazolefunctionalgroupsonthendopingpropertiesofbenzimidazolederivatives