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The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers

Catalyst transfer polycondensation is the only method to prepare π-conjugated polymers in a chain-growth manner, yet several aspects that underlie this polymerization are not fully understood. Here, we investigate the nickel-catalyzed polymerization mechanisms of a series of thiophene monomers beari...

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Autores principales: Ye, Shuyang, Foster, Scott M., Pollit, Adam A., Cheng, Susan, Seferos, Dwight S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6375363/
https://www.ncbi.nlm.nih.gov/pubmed/30842865
http://dx.doi.org/10.1039/c8sc04808h
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author Ye, Shuyang
Foster, Scott M.
Pollit, Adam A.
Cheng, Susan
Seferos, Dwight S.
author_facet Ye, Shuyang
Foster, Scott M.
Pollit, Adam A.
Cheng, Susan
Seferos, Dwight S.
author_sort Ye, Shuyang
collection PubMed
description Catalyst transfer polycondensation is the only method to prepare π-conjugated polymers in a chain-growth manner, yet several aspects that underlie this polymerization are not fully understood. Here, we investigate the nickel-catalyzed polymerization mechanisms of a series of thiophene monomers bearing different halogen functionalities (Cl, Br, I). We have discovered the significant role that halogens and magnesium salts play in this polymerization. More specifically, the catalyst resting state changes depending on the type of halogenated monomer. For chlorinated monomers a mixture of Ni(ii)-dithienyl and dissociated Ni(phosphine) complexes are the resting states, which results in uncontrolled polymerization. For brominated monomers, a Ni(ii)-dithienyl complex is the resting state, which leads to controlled polymerization. For iodinated monomers, a Ni(ii)-thienyl iodide complex is the resting state, and notable inhibition by magnesium salt by-products is observed. The catalyst resting state changes to a Ni(ii)-dithienyl complex when a turbo Grignard reagent (i-PrMgCl·LiCl) is used. These findings are used to guide the design of a new monomer, 2-bromo-3-(2-ethylhexyl)-5-iodotellurophene, which enables the first controlled polymerization of a tellurophene monomer containing a sterically encumbered 2-ethylhexyl side chain. These insights are crucial for deepening the mechanistic understanding of Kumada cross coupling reactions and the controlled synthesis of π-conjugated polymers.
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spelling pubmed-63753632019-03-06 The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers Ye, Shuyang Foster, Scott M. Pollit, Adam A. Cheng, Susan Seferos, Dwight S. Chem Sci Chemistry Catalyst transfer polycondensation is the only method to prepare π-conjugated polymers in a chain-growth manner, yet several aspects that underlie this polymerization are not fully understood. Here, we investigate the nickel-catalyzed polymerization mechanisms of a series of thiophene monomers bearing different halogen functionalities (Cl, Br, I). We have discovered the significant role that halogens and magnesium salts play in this polymerization. More specifically, the catalyst resting state changes depending on the type of halogenated monomer. For chlorinated monomers a mixture of Ni(ii)-dithienyl and dissociated Ni(phosphine) complexes are the resting states, which results in uncontrolled polymerization. For brominated monomers, a Ni(ii)-dithienyl complex is the resting state, which leads to controlled polymerization. For iodinated monomers, a Ni(ii)-thienyl iodide complex is the resting state, and notable inhibition by magnesium salt by-products is observed. The catalyst resting state changes to a Ni(ii)-dithienyl complex when a turbo Grignard reagent (i-PrMgCl·LiCl) is used. These findings are used to guide the design of a new monomer, 2-bromo-3-(2-ethylhexyl)-5-iodotellurophene, which enables the first controlled polymerization of a tellurophene monomer containing a sterically encumbered 2-ethylhexyl side chain. These insights are crucial for deepening the mechanistic understanding of Kumada cross coupling reactions and the controlled synthesis of π-conjugated polymers. Royal Society of Chemistry 2018-12-19 /pmc/articles/PMC6375363/ /pubmed/30842865 http://dx.doi.org/10.1039/c8sc04808h Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Ye, Shuyang
Foster, Scott M.
Pollit, Adam A.
Cheng, Susan
Seferos, Dwight S.
The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
title The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
title_full The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
title_fullStr The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
title_full_unstemmed The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
title_short The role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
title_sort role of halogens in the catalyst transfer polycondensation for π-conjugated polymers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6375363/
https://www.ncbi.nlm.nih.gov/pubmed/30842865
http://dx.doi.org/10.1039/c8sc04808h
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