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通过后聚合改性用混合二醇/离子侧链修饰的供体-受体共轭聚合物的增强型有机电化学晶体管性能

Enhanced Organic Electrochemical Transistor Performance of Donor-Acceptor Conjugated Polymers Modified with Hybrid Glycol/Ionic Side Chains by Postpolymerization Modification.

作者信息

Ding Bowen, Jo Il-Young, Yu Hang, Kim Ji Hwan, Marsh Adam V, Gutiérrez-Fernández Edgar, Ramos Nicolás, Rapley Charlotte L, Rimmele Martina, He Qiao, Martín Jaime, Gasparini Nicola, Nelson Jenny, Yoon Myung-Han, Heeney Martin

机构信息

Department of Chemistry and Centre for Processable Electronics, Imperial College London, Molecular Sciences Research Hub (White City Campus), 80 Wood Lane Shepherd's Bush, London W12 0BZ, United Kingdom.

School of Materials Science and Engineering, Gwangju Institute of Science and Technology, 123 Cheomdangwagi-ro, Buk-gu, Gwangju 61005, Republic of Korea.

出版信息

Chem Mater. 2023 Apr 11;35(8):3290-3299. doi: 10.1021/acs.chemmater.3c00327. eCollection 2023 Apr 25.

Abstract

Emergent bioelectronic technologies are underpinned by the organic electrochemical transistor (OECT), which employs an electrolyte medium to modulate the conductivity of its organic semiconductor channel. Here we utilize postpolymerization modification (PPM) on a conjugated polymer backbone to directly introduce glycolated or anionic side chains via fluoride displacement. The resulting polymers demonstrated increased volumetric capacitances, with subdued swelling, compared to their parent polymer in -type enhancement mode OECTs. This increase in capacitance was attributed to their modified side chain configurations enabling cationic charge compensation for thin film electrochemical oxidation, as deduced from electrochemical quartz crystal microbalance measurements. An overall improvement in OECT performance was recorded for the hybrid glycol/ionic polymer compared to the parent, owing to its low swelling and bimodal crystalline orientation as imaged by grazing-incidence wide-angle X-ray scattering, enabling its high charge mobility at 1.02 cm·V·s. Compromised device performance was recorded for the fully glycolated derivative compared to the parent, which was linked to its limited face-on stacking, which hindered OECT charge mobility at 0.26 cm·V·s, despite its high capacitance. These results highlight the effectiveness of anionic side chain attachment by PPM as a means of increasing the volumetric capacitance of -type conjugated polymers for OECTs, while retaining solid-state macromolecular properties that facilitate hole transport.

摘要

新兴生物电子技术以有机电化学晶体管(OECT)为基础,该晶体管采用电解质介质来调节其有机半导体通道的电导率。在此,我们对共轭聚合物主链进行后聚合修饰(PPM),通过氟取代直接引入糖基化或阴离子侧链。在n型增强模式的OECT中,与母体聚合物相比,所得聚合物表现出增加的体积电容,且溶胀受到抑制。根据电化学石英晶体微天平测量结果推断,这种电容的增加归因于其修饰的侧链构型能够为薄膜电化学氧化提供阳离子电荷补偿。与母体相比,混合糖基/离子聚合物的OECT性能总体有所改善,这归因于其低溶胀和掠入射广角X射线散射成像显示的双峰晶体取向,使其在1.02 cm²·V⁻¹·s⁻¹具有高电荷迁移率。与母体相比,完全糖基化衍生物的器件性能有所下降,这与其有限的面内堆积有关,尽管其电容较高,但在0.26 cm²·V⁻¹·s⁻¹时阻碍了OECT的电荷迁移率。这些结果突出了通过PPM连接阴离子侧链作为增加用于OECT的n型共轭聚合物体积电容的一种手段的有效性,同时保留了有利于空穴传输的固态大分子特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29ba/10134426/6f6d6b14d26c/cm3c00327_0005.jpg

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