化学
共轭体系
聚合物
噻吩
半导体
分子
晶体管
侧链
戒指(化学)
纳米技术
光电子学
材料科学
化学工程
复合材料
有机化学
电气工程
电压
工程类
作者
Deyu Liu,Jaewan Mun,Gan Chen,Nathaniel J. Schuster,Weichen Wang,Yu Zheng,Shayla Nikzad,Jian‐Cheng Lai,Yilei Wu,Donglai Zhong,Yangju Lin,Yusheng Lei,Yuelang Chen,Sangah Gam,Jong Won Chung,Youngjun Yun,Jeffrey B.‐H. Tok,Zhenan Bao
摘要
Strategies to improve stretchability of polymer semiconductors, such as introducing flexible conjugation-breakers or adding flexible blocks, usually result in degraded electrical properties. In this work, we propose a concept to address this limitation, by introducing conjugated rigid fused-rings with optimized bulky side groups and maintaining a conjugated polymer backbone. Specifically, we investigated two classes of rigid fused-ring systems, namely, benzene-substituted dibenzothiopheno[6,5-b:6',5'-f]thieno[3,2-b]thiophene (Ph-DBTTT) and indacenodithiophene (IDT) systems, and identified molecules displaying optimized electrical and mechanical properties. In the IDT system, the polymer PIDT-3T-OC12-10% showed promising electrical and mechanical properties. In fully stretchable transistors, the polymer PIDT-3T-OC12-10% showed a mobility of 0.27 cm2 V-1 s-1 at 75% strain and maintained its mobility after being subjected to hundreds of stretching-releasing cycles at 25% strain. Our results underscore the intimate correlation between chemical structures, mechanical properties, and charge carrier mobility for polymer semiconductors. Our described molecular design approach will help to expedite the next generation of intrinsically stretchable high-performance polymer semiconductors.
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