Marks Adam, Chen Xingxing, Wu Ruiheng, Rashid Reem B, Jin Wenlong, Paulsen Bryan D, Moser Maximilian, Ji Xudong, Griggs Sophie, Meli Dilara, Wu Xiaocui, Bristow Helen, Strzalka Joseph, Gasparini Nicola, Costantini Giovanni, Fabiano Simone, Rivnay Jonathan, McCulloch Iain
Department of Chemistry, University of Oxford, Oxford OX1 3TA, U.K.
KAUST Solar Center (KSC), King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
J Am Chem Soc. 2022 Mar 16;144(10):4642-4656. doi: 10.1021/jacs.2c00735. Epub 2022 Mar 8.
A series of fully fused n-type mixed conduction lactam polymers , systematically increasing the alkyl side chain content, are synthesized via an inexpensive, nontoxic, precious-metal-free aldol polycondensation. Employing these polymers as channel materials in organic electrochemical transistors (OECTs) affords state-of-the-art n-type performance with recording an OECT electron mobility of 1.20 × 10 cm V s and a μ* figure of merit of 1.83 F cm V s. In parallel to high OECT performance, upon solution doping with (4-(1,3-dimethyl-2,3-dihydro-1-benzoimidazol-2-yl)phenyl)dimethylamine (N-DMBI), the highest thermoelectric performance is observed for , with a maximum electrical conductivity of 7.67 S cm and a power factor of 10.4 μW m K. These results are among the highest reported for n-type polymers. Importantly, while this series of fused polylactam organic mixed ionic-electronic conductors (OMIECs) highlights that synthetic molecular design strategies to bolster OECT performance can be translated to also achieve high organic thermoelectric (OTE) performance, a nuanced synthetic approach must be used to optimize performance. Herein, we outline the performance metrics and provide new insights into the molecular design guidelines for the next generation of high-performance n-type materials for mixed conduction applications, presenting for the first time the results of a single polymer series within both OECT and OTE applications.
通过廉价、无毒、无贵金属的羟醛缩聚反应,合成了一系列完全融合的n型混合传导内酰胺聚合物,系统地增加了烷基侧链含量。将这些聚合物用作有机电化学晶体管(OECT)中的沟道材料,可实现最先进的n型性能,记录到的OECT电子迁移率为1.20×10 cm V s,优值系数μ*为1.83 F cm V s。与高OECT性能并行的是,在用(4-(1,3-二甲基-2,3-二氢-1-苯并咪唑-2-基)苯基)二甲胺(N-DMBI)进行溶液掺杂时,观察到其具有最高的热电性能,最大电导率为7.67 S cm,功率因数为10.4 μW m K。这些结果是n型聚合物中报道的最高结果之一。重要的是,虽然这一系列融合聚内酰胺有机混合离子-电子导体(OMIECs)突出表明,增强OECT性能的合成分子设计策略也可转化为实现高有机热电(OTE)性能,但必须采用细致入微的合成方法来优化性能。在此,我们概述了性能指标,并为下一代用于混合传导应用的高性能n型材料的分子设计指南提供了新的见解,首次展示了单一聚合物系列在OECT和OTE应用中的结果。