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Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential

In the current DFT study, seven dimethoxyl-indaceno dithiophene based semiconducting acceptor molecules (ID1–ID7) are designed computationally by modifying the parent molecule (IDR). Here, based on a DFT exploration at a carefully selected level of theory, we have compiled a list of the optoelectron...

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Autores principales: Rashid, Ehsan Ullah, Hadia, N. M. A., Shawky, Ahmed M., Ijaz, Nashra, Essid, Manel, Iqbal, Javed, Alatawi, Naifa S., Ans, Muhammad, Khera, Rasheed Ahmad
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/PMC9900428/
https://www.ncbi.nlm.nih.gov/pubmed/36760314
http://dx.doi.org/10.1039/d2ra07957g
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author Rashid, Ehsan Ullah
Hadia, N. M. A.
Shawky, Ahmed M.
Ijaz, Nashra
Essid, Manel
Iqbal, Javed
Alatawi, Naifa S.
Ans, Muhammad
Khera, Rasheed Ahmad
author_facet Rashid, Ehsan Ullah
Hadia, N. M. A.
Shawky, Ahmed M.
Ijaz, Nashra
Essid, Manel
Iqbal, Javed
Alatawi, Naifa S.
Ans, Muhammad
Khera, Rasheed Ahmad
author_sort Rashid, Ehsan Ullah
collection PubMed
description In the current DFT study, seven dimethoxyl-indaceno dithiophene based semiconducting acceptor molecules (ID1–ID7) are designed computationally by modifying the parent molecule (IDR). Here, based on a DFT exploration at a carefully selected level of theory, we have compiled a list of the optoelectronic properties of ID1–ID7 and IDR. In light of these results, all newly designed molecules, except ID5 have shown a bathochromic shift in their highest absorbance (λ(max)). ID1–ID4, ID6 and ID7 molecules have smaller band gap (E(gap)) and excitation energy (E(x)). IP of ID5 is the smallest and EA of ID1 is the largest among all others. Compared to the parent molecule, ID1–ID3 have increased electron mobility, with ID1 being the most improved in hole mobility. ID4 had the best light harvesting efficiency in this investigation, due to its strongest oscillator. The acceptor molecules' open-circuit voltages (V(OC)) were computed after being linked to the PTB7-Th donor molecule. Fill factor (FF) and normalized V(OC) of ID1–ID7 were calculated and compared to the parent molecule. Based on the outcomes of this study, the modified acceptors may be further scrutinised for empirical usage in the production of organic solar cells with enhanced photovoltaic capabilities.
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spelling pubmed-99004282023-02-08 Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential Rashid, Ehsan Ullah Hadia, N. M. A. Shawky, Ahmed M. Ijaz, Nashra Essid, Manel Iqbal, Javed Alatawi, Naifa S. Ans, Muhammad Khera, Rasheed Ahmad RSC Adv Chemistry In the current DFT study, seven dimethoxyl-indaceno dithiophene based semiconducting acceptor molecules (ID1–ID7) are designed computationally by modifying the parent molecule (IDR). Here, based on a DFT exploration at a carefully selected level of theory, we have compiled a list of the optoelectronic properties of ID1–ID7 and IDR. In light of these results, all newly designed molecules, except ID5 have shown a bathochromic shift in their highest absorbance (λ(max)). ID1–ID4, ID6 and ID7 molecules have smaller band gap (E(gap)) and excitation energy (E(x)). IP of ID5 is the smallest and EA of ID1 is the largest among all others. Compared to the parent molecule, ID1–ID3 have increased electron mobility, with ID1 being the most improved in hole mobility. ID4 had the best light harvesting efficiency in this investigation, due to its strongest oscillator. The acceptor molecules' open-circuit voltages (V(OC)) were computed after being linked to the PTB7-Th donor molecule. Fill factor (FF) and normalized V(OC) of ID1–ID7 were calculated and compared to the parent molecule. Based on the outcomes of this study, the modified acceptors may be further scrutinised for empirical usage in the production of organic solar cells with enhanced photovoltaic capabilities. The Royal Society of Chemistry 2023-02-06 /pmc/articles/PMC9900428/ /pubmed/36760314 http://dx.doi.org/10.1039/d2ra07957g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Rashid, Ehsan Ullah
Hadia, N. M. A.
Shawky, Ahmed M.
Ijaz, Nashra
Essid, Manel
Iqbal, Javed
Alatawi, Naifa S.
Ans, Muhammad
Khera, Rasheed Ahmad
Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
title Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
title_full Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
title_fullStr Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
title_full_unstemmed Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
title_short Quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
title_sort quantum modeling of dimethoxyl-indaceno dithiophene based acceptors for the development of semiconducting acceptors with outstanding photovoltaic potential
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900428/
https://www.ncbi.nlm.nih.gov/pubmed/36760314
http://dx.doi.org/10.1039/d2ra07957g
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