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基于受体-供体-受体策略的绿色合成法制备新型功能性导电结构及高空穴迁移率聚合物晶体管的设计

Design of Novel Functional Conductive Structures and Preparation of High-Hole-Mobility Polymer Transistors by Green Synthesis Using Acceptor-Donor-Acceptor Strategies.

作者信息

Ren Shiwei, Wang Sichun, Chen Jinyang, Yi Zhengran

机构信息

Advanced Materials Platform Laboratory, Zhuhai Fudan Innovation and Science Research Center, Guangdong-Macao In-Depth Cooperation Zone in Hengqin 519000, China.

Laboratory of Molecular Materials and Devices, State Key Laboratory of Molecular Engineering of Polymers, Department of Materials Science, Fudan University, Shanghai 200438, China.

出版信息

Polymers (Basel). 2024 Jan 31;16(3):396. doi: 10.3390/polym16030396.

Abstract

The design of novel acceptor molecular structures based on classical building blocks is regarded as one of the efficient ways to explore the application of organic conjugated materials in conductivity and electronics. Here, a novel acceptor moiety, thiophene-vinyl-diketopyrrolopyrrole (TVDPP), was envisioned and prepared with a longer conjugation length and a more rigid structure than thiophene-diketopyrrolopyrrole (TDPP). The brominated TVDPP can be sequentially bonded to trimethyltin-containing benzo[c][1,2,5]thiadiazole units via Suzuki polycondensation to efficiently prepare the polymer PTVDPP-BSz, which features high molecular weight and excellent thermal stability. The polymerization process takes only 24 h and eliminates the need for chlorinated organic solvents or toxic tin-based reagents. Density functional theory (DFT) simulations and film morphology analyses verify the planarity and high crystallinity of the material, respectively, which facilitates the achievement of high carrier mobility. Conductivity measurements of the polymeric material in the organic transistor device show a hole mobility of 0.34 cm V s, which illustrates its potential for functionalized semiconductor applications.

摘要

基于经典结构单元设计新型受体分子结构被认为是探索有机共轭材料在导电性和电子学方面应用的有效途径之一。在此,我们设想并制备了一种新型受体部分,噻吩 - 乙烯基 - 二酮吡咯并吡咯(TVDPP),其共轭长度比噻吩 - 二酮吡咯并吡咯(TDPP)更长,结构更刚性。溴化的TVDPP可通过铃木缩聚反应依次与含三甲基锡的苯并[c][1,2,5]噻二唑单元键合,从而高效制备出具有高分子量和优异热稳定性的聚合物PTVDPP - BSz。聚合过程仅需24小时,且无需使用氯化有机溶剂或有毒的锡基试剂。密度泛函理论(DFT)模拟和薄膜形态分析分别验证了该材料的平面性和高结晶度,这有利于实现高载流子迁移率。在有机晶体管器件中对该聚合物材料进行的电导率测量显示空穴迁移率为0.34 cm² V⁻¹ s⁻¹,这表明其在功能化半导体应用方面具有潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ee39/10857718/e57b87345a1f/polymers-16-00396-g001.jpg

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