材料科学
聚合物
纳米技术
可伸缩电子设备
高分子科学
软质材料
复合材料
数码产品
电气工程
工程类
作者
Angela Lin,Lorenzo Guio,Garrett LeCroy,Stanley Lo,Adnan Sharif,Yunfei Wang,Alberto Salleo,Xiaodan Gu,Christine K. Luscombe,Helen Tran
标识
DOI:10.1002/aelm.202400756
摘要
Abstract π ‐conjugated polymers (CPs) that are concurrently soft and stretchable are needed for deformable electronics. Molecular‐level modification of indacenodithiophene (IDT) copolymers, a class of CPs that exhibit high hole mobilities ( hole ), is an approach that can help realize intrinsically soft and stretchable CPs. Numerous examples of design strategies to adjust the stretchability of CPs exist, but imparting softness is comparatively less studied. In this study, a systematic molecular weight (MW) series is constructed on a promising candidate for soft CPs, poly(indacenodithiophene‐ co ‐thienopyrroledione) (p(IDT C16 ‐TPD C8 )), by optimizing direct arylation polymerization conditions in hopes of improving stretchability and μ hole without significantly impacting softness. We found p(IDT C16 ‐TPD C8 ) at a degree of polymerization of 32 shows high stretchability (crack onset strain, CoS > 100%) without significantly impacting softness (elastic modulus, E = 32 MPa), which to the best of our knowledge outperforms previously reported stretchable and soft CPs. To further study how molecular‐level modifications impact polymer properties, a MW series of a new extended donor unit polymer, poly(indacenodithienothiophene‐ co ‐thienopyrroledione) (p(IDTT C16 ‐TPD C8 )), was synthesized. The IDTT C16 copolymers did not result in a greater average μ hole when comparing between p(IDTT C16 ‐TPD C8 ) and p(IDT C16 ‐TPD C8 ) despite their higher crystallinity observed by GIWAXS. While these findings warrant further investigation, this study points toward unique charge transport properties of IDT‐based polymers.
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