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Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells

Polycyclic heteroaromatics play a pivotal role in advancing the field of high-performance organic semiconductors. In this study, we report the synthesis of a pyrrole-bridged double azahelicene through intramolecular oxidative cyclization. By incorporating bis(4-methoxyphenyl)amine (OMeDPA) and ethyl...

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Autores principales: Wei, Yuefang, Cai, Yaohang, He, Lifei, Zhang, Yuyan, Yuan, Yi, Zhang, Jing, Wang, Peng
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/PMC10530664/
https://www.ncbi.nlm.nih.gov/pubmed/37772097
http://dx.doi.org/10.1039/d3sc02845c
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author Wei, Yuefang
Cai, Yaohang
He, Lifei
Zhang, Yuyan
Yuan, Yi
Zhang, Jing
Wang, Peng
author_facet Wei, Yuefang
Cai, Yaohang
He, Lifei
Zhang, Yuyan
Yuan, Yi
Zhang, Jing
Wang, Peng
author_sort Wei, Yuefang
collection PubMed
description Polycyclic heteroaromatics play a pivotal role in advancing the field of high-performance organic semiconductors. In this study, we report the synthesis of a pyrrole-bridged double azahelicene through intramolecular oxidative cyclization. By incorporating bis(4-methoxyphenyl)amine (OMeDPA) and ethylenedioxythiophene-phenyl-OMeDPA (EP-OMeDPA) into the sp(3)-nitrogen rich double helicene framework, we have successfully constructed two organic semiconductors with ionization potentials suitable for application in perovskite solar cells. The amorphous films of both organic semiconductors exhibit hole density-dependent mobility and conductivity. Notably, the organic semiconductor utilizing EP-OMeDPA as the electron donor demonstrates superior hole mobility at a given hole density, which is attributed to reduced reorganization energy and increased centroid distance. Moreover, this organic semiconductor exhibits a remarkably elevated glass transition temperature of up to 230 °C and lower diffusivity for external small molecules and ions. When employed as the p-doped hole transport layer in perovskite solar cells, TMDAP-EP-OMeDPA achieves an improved average efficiency of 21.7%. Importantly, the solar cell with TMDAP-EP-OMeDPA also demonstrates enhanced long-term operational stability and storage stability at 85 °C. These findings provide valuable insights into the development of high-performance organic semiconductors, contributing to the practical application of perovskite solar cells.
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spelling pubmed-105306642023-09-28 Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells Wei, Yuefang Cai, Yaohang He, Lifei Zhang, Yuyan Yuan, Yi Zhang, Jing Wang, Peng Chem Sci Chemistry Polycyclic heteroaromatics play a pivotal role in advancing the field of high-performance organic semiconductors. In this study, we report the synthesis of a pyrrole-bridged double azahelicene through intramolecular oxidative cyclization. By incorporating bis(4-methoxyphenyl)amine (OMeDPA) and ethylenedioxythiophene-phenyl-OMeDPA (EP-OMeDPA) into the sp(3)-nitrogen rich double helicene framework, we have successfully constructed two organic semiconductors with ionization potentials suitable for application in perovskite solar cells. The amorphous films of both organic semiconductors exhibit hole density-dependent mobility and conductivity. Notably, the organic semiconductor utilizing EP-OMeDPA as the electron donor demonstrates superior hole mobility at a given hole density, which is attributed to reduced reorganization energy and increased centroid distance. Moreover, this organic semiconductor exhibits a remarkably elevated glass transition temperature of up to 230 °C and lower diffusivity for external small molecules and ions. When employed as the p-doped hole transport layer in perovskite solar cells, TMDAP-EP-OMeDPA achieves an improved average efficiency of 21.7%. Importantly, the solar cell with TMDAP-EP-OMeDPA also demonstrates enhanced long-term operational stability and storage stability at 85 °C. These findings provide valuable insights into the development of high-performance organic semiconductors, contributing to the practical application of perovskite solar cells. The Royal Society of Chemistry 2023-09-07 /pmc/articles/PMC10530664/ /pubmed/37772097 http://dx.doi.org/10.1039/d3sc02845c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wei, Yuefang
Cai, Yaohang
He, Lifei
Zhang, Yuyan
Yuan, Yi
Zhang, Jing
Wang, Peng
Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
title Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
title_full Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
title_fullStr Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
title_full_unstemmed Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
title_short Molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
title_sort molecular engineering of nitrogen-rich helicene based organic semiconductors for stable perovskite solar cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10530664/
https://www.ncbi.nlm.nih.gov/pubmed/37772097
http://dx.doi.org/10.1039/d3sc02845c
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