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Alkyl-Side-Chain Engineering of Nonfused Nonfullerene Acceptors with Simultaneously Improved Material Solubility and Device Performance for Organic Solar Cells
[Image: see text] Two nonfullerene small molecules, TBTT-BORH and TBTT-ORH, which have the same thiophene–benzothiadiazole–thiophene (TBTT) core flanked with butyloctyl (BO)- and octyl (O)-substituted rhodanines (RHs) at both ends, respectively, are developed as electron acceptors for organic solar...
Autores principales: | , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2021
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7905825/ https://www.ncbi.nlm.nih.gov/pubmed/33644564 http://dx.doi.org/10.1021/acsomega.0c04495 |
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author | Lee, Taeho Song, Chang Eun Lee, Sang Kyu Shin, Won Suk Lim, Eunhee |
author_facet | Lee, Taeho Song, Chang Eun Lee, Sang Kyu Shin, Won Suk Lim, Eunhee |
author_sort | Lee, Taeho |
collection | PubMed |
description | [Image: see text] Two nonfullerene small molecules, TBTT-BORH and TBTT-ORH, which have the same thiophene–benzothiadiazole–thiophene (TBTT) core flanked with butyloctyl (BO)- and octyl (O)-substituted rhodanines (RHs) at both ends, respectively, are developed as electron acceptors for organic solar cells (OSCs). The difference between the alkyl groups introduced into TBTT-BORH and TBTT-ORH strongly influence the intermolecular aggregation in the film state. Differential scanning calorimetry and UV–vis absorption studies reveal that TBTT-ORH exhibited stronger molecular aggregation behavior than TBTT-BORH. On the contrary, the material solubility is greatly improved by the introduction of a BO group in TBTT-BORH, and the inevitably low molecular interaction and packing ability of the as-cast TBTT-BORH film can be effectively increased by a solvent-vapor annealing (SVA) treatment. OSCs based on the two acceptors and PTB7-Th as a polymer donor are fabricated owing to their complementary absorption and sufficient energy-level offsets. The best power conversion efficiency of 8.33% is obtained with the SVA-treated TBTT-BORH device, where, together with a high open-circuit voltage of 1.02 V, the charge-carrier mobility and the short-circuit current density were greatly improved by the SVA treatment to levels comparable to those of the TBTT-ORH device because of the suppressed charge recombination and improved film morphology. In this work, the simultaneous improvement of both material solubility and device performance is achieved through alkyl side-chain engineering to balance the trade-offs among material solubility/crystallinity/device performance. |
format | Online Article Text |
id | pubmed-7905825 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-79058252021-02-26 Alkyl-Side-Chain Engineering of Nonfused Nonfullerene Acceptors with Simultaneously Improved Material Solubility and Device Performance for Organic Solar Cells Lee, Taeho Song, Chang Eun Lee, Sang Kyu Shin, Won Suk Lim, Eunhee ACS Omega [Image: see text] Two nonfullerene small molecules, TBTT-BORH and TBTT-ORH, which have the same thiophene–benzothiadiazole–thiophene (TBTT) core flanked with butyloctyl (BO)- and octyl (O)-substituted rhodanines (RHs) at both ends, respectively, are developed as electron acceptors for organic solar cells (OSCs). The difference between the alkyl groups introduced into TBTT-BORH and TBTT-ORH strongly influence the intermolecular aggregation in the film state. Differential scanning calorimetry and UV–vis absorption studies reveal that TBTT-ORH exhibited stronger molecular aggregation behavior than TBTT-BORH. On the contrary, the material solubility is greatly improved by the introduction of a BO group in TBTT-BORH, and the inevitably low molecular interaction and packing ability of the as-cast TBTT-BORH film can be effectively increased by a solvent-vapor annealing (SVA) treatment. OSCs based on the two acceptors and PTB7-Th as a polymer donor are fabricated owing to their complementary absorption and sufficient energy-level offsets. The best power conversion efficiency of 8.33% is obtained with the SVA-treated TBTT-BORH device, where, together with a high open-circuit voltage of 1.02 V, the charge-carrier mobility and the short-circuit current density were greatly improved by the SVA treatment to levels comparable to those of the TBTT-ORH device because of the suppressed charge recombination and improved film morphology. In this work, the simultaneous improvement of both material solubility and device performance is achieved through alkyl side-chain engineering to balance the trade-offs among material solubility/crystallinity/device performance. American Chemical Society 2021-02-09 /pmc/articles/PMC7905825/ /pubmed/33644564 http://dx.doi.org/10.1021/acsomega.0c04495 Text en © 2021 American Chemical Society |
spellingShingle | Lee, Taeho Song, Chang Eun Lee, Sang Kyu Shin, Won Suk Lim, Eunhee Alkyl-Side-Chain Engineering of Nonfused Nonfullerene Acceptors with Simultaneously Improved Material Solubility and Device Performance for Organic Solar Cells |
title | Alkyl-Side-Chain Engineering of Nonfused Nonfullerene
Acceptors with Simultaneously Improved Material Solubility and Device
Performance for Organic Solar Cells |
title_full | Alkyl-Side-Chain Engineering of Nonfused Nonfullerene
Acceptors with Simultaneously Improved Material Solubility and Device
Performance for Organic Solar Cells |
title_fullStr | Alkyl-Side-Chain Engineering of Nonfused Nonfullerene
Acceptors with Simultaneously Improved Material Solubility and Device
Performance for Organic Solar Cells |
title_full_unstemmed | Alkyl-Side-Chain Engineering of Nonfused Nonfullerene
Acceptors with Simultaneously Improved Material Solubility and Device
Performance for Organic Solar Cells |
title_short | Alkyl-Side-Chain Engineering of Nonfused Nonfullerene
Acceptors with Simultaneously Improved Material Solubility and Device
Performance for Organic Solar Cells |
title_sort | alkyl-side-chain engineering of nonfused nonfullerene
acceptors with simultaneously improved material solubility and device
performance for organic solar cells |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7905825/ https://www.ncbi.nlm.nih.gov/pubmed/33644564 http://dx.doi.org/10.1021/acsomega.0c04495 |
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