State Key Laboratory of Optoelectronic Materials and Technologies, Key Laboratory for Polymeric Composite and Functional Materials of Ministry of Education, Guangzhou Key Laboratory of Flexible Electronic Materials and Wearable Devices, School of Materials Science and Engineering, Sun Yat-sen University, Guangzhou, 510275, P. R. China.
Hoffman Institute of Advanced Materials, Shenzhen Polytechnic, 7098 Liuxian Boulevard, Shenzhen, 518055, China.
Adv Mater. 2023 Jun;35(23):e2300252. doi: 10.1002/adma.202300252. Epub 2023 Apr 26.
Tailoring organic semiconductors to facilitate mixed conduction of ionic and electronic charges when interfaced with an aqueous media has spurred many recent advances in organic bioelectronics. The field is still restricted, however, by very few n-type (electron-transporting) organic semiconductors with adequate performance metrics. Here, a new electron-deficient, fused polycyclic aromatic system, TNR, is reported with excellent n-type mixed conduction properties including a µC* figure-of-merit value exceeding 30 F cm V s for the best performing derivative. Comprising three naphthalene bis-isatin moieties, this new molecular design builds on successful small-molecule mixed conductors; by extending the molecular scaffold into the oligomer domain, good film-forming properties, strong π-π interactions, and consequently excellent charge-transport properties are obtained. Through judicious optimization of the side chains, the linear oligoether and branched alkyl chain derivative bgTNR is obtained which shows superior mixed conduction in an organic electrochemical transistor configuration including an electron mobility around 0.3 cm V s . By optimizing the side chains, the dominant molecular packing can be changed from a preferential edge-on orientation (with high charge-transport anisotropy) to an oblique orientation that can support 3D transport pathways which in turn ensure highly efficient mixed conduction properties across the bulk semiconductor film.
当与水相介质界面结合时,将有机半导体定制为有利于离子和电子电荷的混合传导,这推动了有机生物电子学的许多最新进展。然而,具有足够性能指标的极少数 n 型(电子传输)有机半导体仍然限制了该领域。在这里,报道了一种新的缺电子、稠合多环芳烃体系 TNR,具有出色的 n 型混合传导性能,包括最佳性能衍生物的µC* 卓越值超过 30 F cm V s。该新型分子设计由三个萘二亚胺马来酰亚胺部分组成,基于成功的小分子混合导体;通过将分子支架扩展到低聚物领域,获得了良好的成膜性能、强π-π相互作用,从而获得了优异的电荷传输性能。通过对侧链进行明智的优化,得到了线性聚醚和支化烷基链衍生物 bgTNR,其在有机电化学晶体管配置中表现出优异的混合传导性能,包括电子迁移率约为 0.3 cm V s。通过优化侧链,可以将主要的分子堆积方式从优先的边缘取向(具有高电荷传输各向异性)改变为斜向取向,从而支持 3D 传输途径,这反过来又确保了整个半导体薄膜的高效混合传导性能。