Synthesis of 1,4‐dihydropyrrolopyrrole‐containing donor–acceptor copolymers and their optoelectronic properties
Donor–acceptor (D–A)‐conjugated polymers have achieved promising performance metrics in numerous optoelectronic applications that continue to motivate studying structure–property relationships and discovering new materials. Here, the materials toolbox is expanded by synthesizing D–A copolymers where...
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Veröffentlicht in: | Journal of polymer science (2020) 2024-07, Vol.62 (13), p.2975-2987 |
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creator | Kenneth‐John J Bell Sabury, Sina Phan, Vanessa Wagner, Ethan M Hawks, Allison M Bartlett, Kimberley A Collier, Graham S |
description | Donor–acceptor (D–A)‐conjugated polymers have achieved promising performance metrics in numerous optoelectronic applications that continue to motivate studying structure–property relationships and discovering new materials. Here, the materials toolbox is expanded by synthesizing D–A copolymers where 1,4‐dihydropyrrolo[3,2‐b]pyrrole (DHPP) is directly incorporated into the main chain of D–A copolymers for the first time via direct heteroarylation polymerization. Notably, the synthetic complexity of DHPP‐containing polymers coupled with thieno[3,2‐b]pyrrole‐4,6‐dione (TPD) or 3,6‐bis(2‐thienyl)‐2,5‐dihydropyrrolo[3,4‐c]pyrrole‐1,4‐dione (Th2DPP) comonomers is calculated to be lower compared to many common conjugated polymers synthesized via direct arylation. The electron‐rich nature of DHPPs when coupled with TPD or DPP enables optoelectronic properties to be manipulated, evident by measuring distinctly different absorbance and redox properties. Additionally, these D–A copolymers demonstrate their potential in organic electronic applications, such as electrochromics and organic photovoltaics. The reported DHPP‐alt‐Th2DPP copolymer is the first DHPP‐based colored‐to‐transmissive electrochrome and achieves power conversion efficiencies of ~2.5% when incorporated into bulk heterojunction solar cells. Overall, the synthetic accessibility of DHPP monomers and their propensity to participate in robust polymerizations highlights the value of establishing structure–property relationships of an underutilized scaffold. These fundamental attributes serve to inform and advance efforts in the development of DHPP‐containing copolymers for various applications. |
doi_str_mv | 10.1002/pol.20240093 |
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Here, the materials toolbox is expanded by synthesizing D–A copolymers where 1,4‐dihydropyrrolo[3,2‐b]pyrrole (DHPP) is directly incorporated into the main chain of D–A copolymers for the first time via direct heteroarylation polymerization. Notably, the synthetic complexity of DHPP‐containing polymers coupled with thieno[3,2‐b]pyrrole‐4,6‐dione (TPD) or 3,6‐bis(2‐thienyl)‐2,5‐dihydropyrrolo[3,4‐c]pyrrole‐1,4‐dione (Th2DPP) comonomers is calculated to be lower compared to many common conjugated polymers synthesized via direct arylation. The electron‐rich nature of DHPPs when coupled with TPD or DPP enables optoelectronic properties to be manipulated, evident by measuring distinctly different absorbance and redox properties. Additionally, these D–A copolymers demonstrate their potential in organic electronic applications, such as electrochromics and organic photovoltaics. The reported DHPP‐alt‐Th2DPP copolymer is the first DHPP‐based colored‐to‐transmissive electrochrome and achieves power conversion efficiencies of ~2.5% when incorporated into bulk heterojunction solar cells. Overall, the synthetic accessibility of DHPP monomers and their propensity to participate in robust polymerizations highlights the value of establishing structure–property relationships of an underutilized scaffold. 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Here, the materials toolbox is expanded by synthesizing D–A copolymers where 1,4‐dihydropyrrolo[3,2‐b]pyrrole (DHPP) is directly incorporated into the main chain of D–A copolymers for the first time via direct heteroarylation polymerization. Notably, the synthetic complexity of DHPP‐containing polymers coupled with thieno[3,2‐b]pyrrole‐4,6‐dione (TPD) or 3,6‐bis(2‐thienyl)‐2,5‐dihydropyrrolo[3,4‐c]pyrrole‐1,4‐dione (Th2DPP) comonomers is calculated to be lower compared to many common conjugated polymers synthesized via direct arylation. The electron‐rich nature of DHPPs when coupled with TPD or DPP enables optoelectronic properties to be manipulated, evident by measuring distinctly different absorbance and redox properties. Additionally, these D–A copolymers demonstrate their potential in organic electronic applications, such as electrochromics and organic photovoltaics. The reported DHPP‐alt‐Th2DPP copolymer is the first DHPP‐based colored‐to‐transmissive electrochrome and achieves power conversion efficiencies of ~2.5% when incorporated into bulk heterojunction solar cells. Overall, the synthetic accessibility of DHPP monomers and their propensity to participate in robust polymerizations highlights the value of establishing structure–property relationships of an underutilized scaffold. These fundamental attributes serve to inform and advance efforts in the development of DHPP‐containing copolymers for various applications.</description><subject>Copolymers</subject><subject>Energy conversion efficiency</subject><subject>Heterojunctions</subject><subject>Optoelectronics</subject><subject>Performance measurement</subject><subject>Photovoltaic cells</subject><subject>Polymerization</subject><subject>Polymers</subject><subject>Solar cells</subject><subject>Synthesis</subject><issn>2642-4150</issn><issn>2642-4169</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNqNjbGOwjAQRC10J4Hu6PgAS9cCt7FNgBqB6KGPImc5jII3rJ0iHZ9wEn_Il-ACUVPNaOZpRohRBtMMQP02VE8VKAOw1D0xULlRE5Ply4-Xn0FfDEM4QcL1LDeQD0S763w8YnBB0kFmY3O__lfu2FVMTcdM9VMw5ZZ8LJ13_k9W5Inv11tpLTaRWFpK_90ZOcjSVzJNOpaUKqzRRibvrGzSJnJ0GL7F56GsAw6f-iV-Nuv9ajtJyKXFEIsTtexTVWiY68VCG630e9QDIj1YVQ</recordid><startdate>20240701</startdate><enddate>20240701</enddate><creator>Kenneth‐John J Bell</creator><creator>Sabury, Sina</creator><creator>Phan, Vanessa</creator><creator>Wagner, Ethan M</creator><creator>Hawks, Allison M</creator><creator>Bartlett, Kimberley A</creator><creator>Collier, Graham S</creator><general>Wiley Subscription Services, Inc</general><scope>7SR</scope><scope>7U5</scope><scope>8FD</scope><scope>JG9</scope><scope>L7M</scope></search><sort><creationdate>20240701</creationdate><title>Synthesis of 1,4‐dihydropyrrolopyrrole‐containing donor–acceptor copolymers and their optoelectronic properties</title><author>Kenneth‐John J Bell ; Sabury, Sina ; Phan, Vanessa ; Wagner, Ethan M ; Hawks, Allison M ; Bartlett, Kimberley A ; Collier, Graham S</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-proquest_journals_30738834323</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Copolymers</topic><topic>Energy conversion efficiency</topic><topic>Heterojunctions</topic><topic>Optoelectronics</topic><topic>Performance measurement</topic><topic>Photovoltaic cells</topic><topic>Polymerization</topic><topic>Polymers</topic><topic>Solar cells</topic><topic>Synthesis</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Kenneth‐John J Bell</creatorcontrib><creatorcontrib>Sabury, Sina</creatorcontrib><creatorcontrib>Phan, Vanessa</creatorcontrib><creatorcontrib>Wagner, Ethan M</creatorcontrib><creatorcontrib>Hawks, Allison M</creatorcontrib><creatorcontrib>Bartlett, Kimberley A</creatorcontrib><creatorcontrib>Collier, Graham S</creatorcontrib><collection>Engineered Materials Abstracts</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>Technology Research Database</collection><collection>Materials Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Journal of polymer science (2020)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Kenneth‐John J Bell</au><au>Sabury, Sina</au><au>Phan, Vanessa</au><au>Wagner, Ethan M</au><au>Hawks, Allison M</au><au>Bartlett, Kimberley A</au><au>Collier, Graham S</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Synthesis of 1,4‐dihydropyrrolopyrrole‐containing donor–acceptor copolymers and their optoelectronic properties</atitle><jtitle>Journal of polymer science (2020)</jtitle><date>2024-07-01</date><risdate>2024</risdate><volume>62</volume><issue>13</issue><spage>2975</spage><epage>2987</epage><pages>2975-2987</pages><issn>2642-4150</issn><eissn>2642-4169</eissn><abstract>Donor–acceptor (D–A)‐conjugated polymers have achieved promising performance metrics in numerous optoelectronic applications that continue to motivate studying structure–property relationships and discovering new materials. Here, the materials toolbox is expanded by synthesizing D–A copolymers where 1,4‐dihydropyrrolo[3,2‐b]pyrrole (DHPP) is directly incorporated into the main chain of D–A copolymers for the first time via direct heteroarylation polymerization. Notably, the synthetic complexity of DHPP‐containing polymers coupled with thieno[3,2‐b]pyrrole‐4,6‐dione (TPD) or 3,6‐bis(2‐thienyl)‐2,5‐dihydropyrrolo[3,4‐c]pyrrole‐1,4‐dione (Th2DPP) comonomers is calculated to be lower compared to many common conjugated polymers synthesized via direct arylation. The electron‐rich nature of DHPPs when coupled with TPD or DPP enables optoelectronic properties to be manipulated, evident by measuring distinctly different absorbance and redox properties. Additionally, these D–A copolymers demonstrate their potential in organic electronic applications, such as electrochromics and organic photovoltaics. The reported DHPP‐alt‐Th2DPP copolymer is the first DHPP‐based colored‐to‐transmissive electrochrome and achieves power conversion efficiencies of ~2.5% when incorporated into bulk heterojunction solar cells. Overall, the synthetic accessibility of DHPP monomers and their propensity to participate in robust polymerizations highlights the value of establishing structure–property relationships of an underutilized scaffold. These fundamental attributes serve to inform and advance efforts in the development of DHPP‐containing copolymers for various applications.</abstract><cop>Hoboken</cop><pub>Wiley Subscription Services, Inc</pub><doi>10.1002/pol.20240093</doi></addata></record> |
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subjects | Copolymers Energy conversion efficiency Heterojunctions Optoelectronics Performance measurement Photovoltaic cells Polymerization Polymers Solar cells Synthesis |
title | Synthesis of 1,4‐dihydropyrrolopyrrole‐containing donor–acceptor copolymers and their optoelectronic properties |
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